Maletić, Dimitrije

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Authority KeyName Variants
2e11a1f3-58fb-4256-bfa7-b6a80eecaf51
  • Maletić, Dimitrije (50)
Projects
FMSR (Austria), FNRS (Belgium), FWO (Belgium), CNPq (Brazil), CAPES (Brazil), FAPERJ (Brazil), FAPESP (Brazil), MES (Bulgaria), CERN (China), CAS (China), MoST (China), NSFC (China), COLCIEN-CIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences (Estonia), NICPB (Estonia), Academy of Finland, ME (Finland), HIP (Finland), CEA (France), CNRS/IN2P3 (France), BMBF, Germany, DFG (Germany), HGF (Germany), GSRT (Greece), OTKA (Hungary), NKTH (Hungary), DAE (India), DST (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF (Korea), LAS (Lithuania), CINVESTAV (Mexico), CONACYT (Mexico), SEP (Mexico), UASLP-FAI (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), JINR (Armenia), JINR (Belarus), JINR (Georgia), JINR (Ukraine), JINR (Uzbekistan), MST (Russia), MAE (Russia), MSTDS (Serbia), MICINN (Spain), CPAN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK (Turkey), TAEK (Turkey), STFC (United Kingdom), DOE (USA), NSF (USA), European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation Nuclear methods in rare event and cosmic-ray research
Biosensing Technologies and Global System for Long-Term Research and Integrated Management of Ecosystems Austrian Federal Ministry of Science and Research, Belgium Fonds de la Recherche Scientifique, and Fonds voor Wetenschappelijk Onderzoek, Brazilian Funding Agencies (CNPq, CAPES, FAPERJ, and FAPESP), Bulgarian Ministry of Education and Science, CERN, Chinese Academy of Sciences, Ministry of Science and Technology, National Natural Science Foundation of China, Colombian Funding Agency (COLCIEN-CIAS), Croatian Ministry of Science, Education and Sport, Research Promotion Foundation, Cyprus, Estonian Academy of Sciences, NICPB, Academy of Finland, Finnish Ministry of Education, Helsinki Institute of Physics, Institut National de Physique Nucleaire et de Physique des Particules/CNRS, Commissariat a lEnergie Atomique, France, Bundesministerium fur Bildung und Forschung, Deutsche Forschungsgemeinschaft, Helmholtz-Gemeinschaft Deutscher For-schungszentren, Germany, General Secretariat for Research and Technology, Greece, National Scientific Research Foundation, Hungary, National Office for Research and Technology, Hungary, Department of Atomic Energy, Department of Science and Technology, India, Institute for Studies in Theoretical Physics and Mathematics, Iran, Science Foundation, Ireland, Istituto Nazionale di Fisica Nucleare, Italy, Korean Ministry of Education, Science and Technology, World Class University program of NRF, Korea, Lithuanian Academy of Sciences, Mexican Funding Agencies (CINVESTAV, CONACYT, SEP, and UASLP-FAI), Pakistan Atomic Energy Commission, State Commission for Scientific Research, Poland, Fundacao para a Ciencia e a Tecnologia, Portugal, JINR (Armenia, Belarus, Georgia, Ukraine, Uzbekistan), Ministry of Science and Technologies of the Russian Federation, Russian Ministry of Atomic Energy, Ministry of Science and Technological Development of Serbia, Ministerio de Ciencia e Innovacion, Spain, Swiss Funding Agencies (ETH Board, ETH Zurich, PSI, SNF, UniZH, Canton Zurich, and SER), National Science Council, Taipei, Scientific and Technical Research Council of Turkey, Turkish Atomic Energy Authority, Science and Technology Facilities Council, UK, US Department of Energy, US National Science Foundation, European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation, Associazione per lo Sviluppo Scientifico e Tecnologico del Piemonte (Italy), Belgian Federal Science Policy Office, Fonds pour la Formation a la Recherche dans lindustrie et dans lAgriculture (FRIA-Belgium), Agentschap voor Innovatie door Wetenschap en Technologie (IWT-Belgium)
Austrian Federal Ministry of Science and Research, Belgium Fonds de la Recherche Scientifique, and Fonds voor Wetenschappelijk Onder-zoek, CNPq, CAPES, FAPERJ, FAPESP, Bulgarian Ministry of Education and Science, CERN, Chinese Academy of Sciences, Ministry of Science and Technology, National Natural Science Foundation of China, COLCIENCIAS, Croatian Ministry of Science, Education and Sport, Research Promotion Foundation, Cyprus, Estonian Academy of Sciences, NICPB, Academy of Finland, Helsinki Institute of Physics, Institut National de Physique Nucleaire et de Physique des Particules/CNRS, Commissariat a lEnergie Atomique, France, Bundesministerium fur Bildung und Forschung, Deutsche Forschungsgemeinschaft, Helmholtz-Gemeinschaft Deutscher Forschungszentren, Germany, General Secretariat for Research and Technology, Greece, National Scientific Research Foundation, Hungary, National Office for Research and Technology, Hungary, Department of Atomic Energy, Department of Science and Technology, India, Institute for Studies in Theoretical Physics and Mathematics, Iran, Science Foundation, Ireland, Istituto Nazionale di Fisica Nucleare, Italy, Korean Ministry of Education, Science and Technology, NRF, Korea, Lithuanian Academy of Sciences, CINVESTAV, CONACYT, SEP, UASLP-FAI, Pakistan Atomic Energy Commission, State Commission for Scientific Research, Poland, Fundacao para a Ciencia e a Tecnologia, Portugal, JINR (Armenia, Belarus, Georgia, Ukraine, Uzbekistan), Ministry of Science and Technologies of the Russian Federation, Russian Ministry of Atomic Energy, Ministry of Science and Technological Development of Serbia, Ministerio de Ciencia e Innovacion, and Programa Consolider-Ingenio 2010, Spain, ETH Board, ETH Zurich, PSI, SNF, UniZH, Canton Zurich, SER, National Science Council, Taipei, Scientific and Technical Research Council of Turkey, Turkish Atomic Energy Authority, Science and Technology Facilities Council, UK, US Department of Energy, US National Science Foundation, European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation, Associazione per lo Sviluppo Scientifico e Tecnologico del Piemonte (Italy) Austrian Federal Ministry of Science and Research, Belgium Fonds de la Recherche Scientifique, Fonds voor Wetenschappelijk Onderzoek, CNPq, CAPES, FAPERJ, FAPESP, Bulgarian Ministry of Education and Science, CERN, Chinese Academy of Sciences, Ministry of Science and Technology, National Natural Science Foundation of China, Colombian Funding Agency (COLCIENCIAS), Croatian Ministry of Science, Education and Sport, Research Promotion Foundation, Cyprus, Estonian Academy of Sciences and NICPB, Academy of Finland, Finnish Ministry of Education, and Helsinki Institute of Physics, Institut National de Physique Nucleaire et de Physique des Particules / CNRS, and Commissariat a lEnergie Atomique, France, Bundesministerium fur Bildung und Forschung, Deutsche Forschungsgemeinschaft, and Helmholtz-Gemeinschaft Deutscher Forschungszentren, Germany, General Secretariat for Research and Technology, Greece, National Scientific Research Foundation, and National Office for Research and Technology, Hungary, Department of Atomic Energy, and Department of Science and Technology, India, Institute for Studies in Theoretical Physics and Mathematics, Iran, Science Foundation, Ireland, Istituto Nazionale di Fisica Nucleare, Italy, Korean Ministry of Education, Science and Technology, World Class University program of NRF, Korea, Lithuanian Academy of Sciences, CINVESTAV, CONACYT, SEP, UASLP-FAI, Pakistan Atomic Energy Commission, State Commission for Scientific Research, Poland, Fundacao para a Ciencia e a Tecnologia, Portugal, JINR (Armenia), JINR (Belarus), JINR (Georgia), JINR (Ukraine), JINR (Uzbekistan), Ministry of Science and Technologies of the Russian Federation, Russian Ministry of Atomic Energy, Ministry of Science and Technological Development of Serbia, Ministerio de Ciencia e Innovacion, and Programa Consolider-Ingenio, Spain, ETH Board, ETH Zurich, PSI, SNF, UniZH, Canton Zurich, SER, National Science Council, Taipei, Scientific and Technical Research Council of Turkey, Turkish Atomic Energy Authority, Science and Technology Facilities Council, UK, US Department of Energy, US National Science Foundation, European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation, Associazione per lo Sviluppo Scientifico e Tecnologico del Piemonte (Italy)
CERN, Department of Atomic Energy and Department of Science and Technology of India, U.S. Department of Energy, U.S. National Science Foundation, Croatian Ministry of Science, Education and Sport [023-0982887-3064], French CNRS/Institut de Physique Nucleaire et de Physique des Particules, French Commissariat a lEnergie Atomique, Greek General Secretariat for Research and Technology, Italian Istituto Nazionale di Fisica Nucleare, Federal Agency for Science and Innovations of the Ministry for Education and Science of the Russian Federation, Federal Agency for Atomic Energy of the Russian Federation, Russian Academy of Sciences, Ministry of Science and Technological Development of Serbia, Swiss Funding Agencies, Science and Technology Facilities Council (UK) CERN, Department of Atomic Energy, Department of Science and Technology of India, U. S, U. S. National Science Foundation, RMKI-KFKI [T 016823], Ministry of Science, Education and Sport [023-0982887-3064], French CNRS/Institut de Physique Nucleaire et de Physique des Particules, French Commissariat a lEnergie Atomique, Greek General Secretariat for Research and Technology, Italian Istituto Nazionale di Fisica Nucleare, Federal Agency for Science and Innovations of the Ministry for Education and Science of the Russian Federation, Federal Agency for Atomic Energy of the Russian Federation, Russian Academy of Sciences, Ministry of Science of Serbia, Swiss Funding Agencies, Scientific and Technical Research Council of Turkey ( TUBITAK),, Turkish Atomic Energy Agency ( TAEK), Bogazici University Research Fund [04B301], Science and Technology Facilities Council
FMSR (Austria), FNRS and FWO (Belgium), CNPq, CAPES, FAPERJ, FAPESP (Brazil), MES (Bulgaria), CERN, CAS, MoST, NSFC (China), COLCIENCIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences and NICPB (Estonia), Academy of Finland, ME, and HIP (Finland), CEA, CNRS/IN2P3 (France), BMBF, Germany, DFG, HGF (Germany), GSRT (Greece), OTKA and NKTH (Hungary), DAE and DST (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF (Korea), LAS (Lithuania), CINVESTAV, CONACYT, SEP, UASLP-FAI (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), JINR (Armenia, Belarus, Georgia, Ukraine, Uzbekistan), MST and MAE (Russia), MSTDS (Serbia), MICINN and CPAN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK and TAEK (Turkey), STFC (United Kingdom), DOE and NSF (USA), European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation FMSR (Austria), FNRS and FWO (Belgium), CNPq, CAPES, FAPERJ, FAPESP (Brazil), MES (Bulgaria), CERN, CAS, MoST, NSFC (China), COLCIENCIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences and NICPB (Estonia), Academy of Finland, ME, HIP (Finland), CEA and CNRS/IN2P3 (France), BMBF, Germany, DFG, HGF (Germany), GSRT (Greece), OTKA and NKTH (Hungary), DAE and DST (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF (Korea), LAS (Lithuania), CINVESTAV, CONACYT, SEP, UASLP-FAI (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), JINR (Armenia, Belarus, Georgia, Ukraine, Uzbekistan), MST and MAE (Russia), MSTDS (Serbia), MICINN and CPAN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK and TAEK (Turkey), STFC (United Kingdom), DOE and NSF (USA), European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation
FMSR (Austria), FNRS and FWO (Belgium), CNPq, CAPES, FAPERJ, FAPESP (Brazil), MES (Bulgaria), CERN, CAS, MoST, NSFC (China), COLCIENCIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences and NICPB (Estonia), ME, HIP, Academy of Finland, CEA, CNRS/IN2P3 (France), BMBF and DESY (Germany), DFG, HGF (Germany), GSRT (Greece), OTKA, NKTH (Hungary), DAE and DST (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF (Korea), LAS (Lithuania), CINVESTAV, CONACYT, SEP, UASLP-FAI (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), JINR (Armenia, Belarus, Georgia, Ukraine, Uzbekistan), MST, MAE (Russia), MSTDS (Serbia), MCINN, CPAN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK and TAEK (Turkey), STFC (United Kingdom), DOE, NSF (U.S.A.), European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation FMSR (Austria), FNRS and FWO (Belgium), CNPq, CAPES, FAPERJ, FAPESP (Brazil), MES (Bulgaria), CERN, CAS, MoST, NSFC (China), COLCIENCIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences, NICPB (Estonia), Academy of Finland, ME, HIP (Finland), CEA, CNRS/IN2P3 (France), BMBF, Germany, DFG, HGF (Germany), GSRT (Greece), OTKA and NKTH (Hungary), DAE and DST (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF (Korea), LAS (Lithuania), CINVESTAV, CONACYT, SEP, UASLP-FAI (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), JINR (Armenia, Belarus, Georgia, Ukraine, Uzbekistan), MST and MAE (Russia), MSTDS (Serbia), MICINN and CPAN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK, TAEK (Turkey), STFC (United Kingdom), DOE and NSF (USA), European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation
FMSR (Austria), FNRS and FWO (Belgium), CNPq, CAPES, FAPERJ, FAPESP (Brazil), MES (Bulgaria), CERN, CAS, MoST, NSFC (China), COLCIENCIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences, NICPB (Estonia), Academy of Finland, ME, HIP (Finland), CEA, CNRS/IN2P3 (France), BMBF, Germany, DFG, HGF (Germany), GSRT (Greece), OTKA, NKTH (Hungary), DAE, DST (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF (Korea), LAS (Lithuania), CINVESTAV, CONACYT, SEP, UASLP-FAI (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), JINR (Armenia, Belarus, Georgia, Ukraine, Uzbekistan), MST, MAE (Russia), MSTDS (Serbia), MICINN, CPAN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK, TAEK (Turkey), STFC (United Kingdom), DOE, NSF (USA), European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation FMSR (Austria), FNRS (Belgium), CNPq (Brazil), CAPES (Brazil), FAPERJ (Brazil), FAPESP (Brazil), MES (Bulgaria), CERN, CAS (China), MoST (China), NSFC (China), COLCIENCIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences (Estonia), Academy of Finland, ME (Finland), HIP (Finland), CEA (France), BMBF, Germany, DFG (Germany), HGF (Germany), GSRT (Greece), OTKA (Hungary), DAE (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF (Korea), LAS (Lithuania), CINVESTAV (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), JINR (Armenia), MST (Russia), MSTDS (Serbia), MICINN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK (Turkey), STFC (United Kingdom), DOE (USA), European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation, FWO (Belgium), NICPB (Estonia), CNRS/IN2P3 (France), NKTH (Hungary), DST (India), SEP (Mexico), UASLP-FAI (Mexico), JINR (Belarus), JINR (Georgia), JINR (Ukraine), JINR (Uzbekistan), MAE (Russia), CPAN (Spain), TAEK (Turkey), NSF (USA)
FMSR (Austria), FNRS (Belgium), CNPq (Brazil), CAPES (Brazil), FAPERJ (Brazil), FAPESP (Brazil), MES (Bulgaria), CERN, CAS (China), MoST (China), NSFC (China), COLCIENCIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences (Estonia), NICPB (Estonia), Academy of Finland, ME (Finland), HIP (Finland), CEA (France), CNRS/IN2P3 (France), BMBF, Germany, DFG (Germany), HGF (Germany), GSRT (Greece), OTKA (Hungary), NKTH (Hungary), DAE (India), DST (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF (Korea), LAS (Lithuania), CINVESTAV (Mexico), CONACYT (Mexico), SEP (Mexico), UASLP-FAI (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), JINR (Armenia), JINR (Belarus), JINR (Georgia), JINR (Ukraine), JINR (Uzbekistan), MST (Russia), MAE (Russia), MSTDS (Serbia), MICINN (Spain), CPAN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK (Turkey), TAEK (Turkey), STFC (United Kingdom), DOE (USA), NSF (USA), European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation FMSR (Austria), FNRS (Belgium), CNPq (Brazil), CAPES (Brazil), FAPERJ (Brazil), FAPESP (Brazil), MES (Bulgaria), CERN, CAS (China), MoST (China), NSFC (China), COLCIENCIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences, NICPB (Estonia), Academy of Finland, ME (Finland), HIP (Finland), CEA (France), CNRS/IN2P3 (France), BMBF, Germany, DFG (Germany), HGF (Germany), GSRT (Greece), OTKA (Hungary), NKTH (Hungary), DAE (India), DST (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF (Korea), LAS (Lithuania), CINVESTAV (Mexico), CONACYT (Mexico), SEP (Mexico), UASLP-FAI (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), JINR (Armenia), JINR (Belarus), JINR (Georgia), JINR (Ukraine), JINR (Uzbekistan), MST (Russia), MAE (Russia), MSTDS (Serbia), MICINN (Spain), CPAN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK (Turkey), TAEK (Turkey), STFC (United Kingdom), DOE (USA), NSF (USA), European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation, FWO (Belgium)
FMSR (Austria), FNRS (Belgium), CNPq (Brazil), MES (Bulgaria), CERN, CAS (China), COLCIEN-CIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences (Estonia), Academy of Finland, CEA (France), BMBF, Germany, GSRT (Greece), OTKA (Hungary), DAE (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF (Korea), LAS (Lithuania), CINVESTAV (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), JINR (Armenia), MST (Russia), MSTDS (Serbia), MICINN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK (Turkey), STFC (United Kingdom), DOE (USA), European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation, FWO (Belgium), CAPES (Brazil), FAPERJ (Brazil), FAPESP (Brazil), MoST (China), NSFC (China), NICPB (Estonia), ME, HIP (Finland), CNRS/IN2P3 (France), DFG (Germany), HGF (Germany), NKTH (Hungary), DST (India), CONACYT (Mexico), SEP (Mexico), UASLP-FAI (Mexico), JINR (Belarus), JINR (Georgia), JINR (Ukraine), JINR (Uzbekistan), MAE (Russia), CPAN (Spain), TAEK (Turkey), NSF (USA) FMSR (Austria), FNRS, Belgium, CNPq, CAPES, FAPERJ, and FAPESP (Brazil), MES (Bulgaria), CERN, CAS, MoST, and NSFC (China), COLCIENCIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences and NICPB (Estonia), Academy of Finland, ME, and HIP (Finland), CEA and CNRS/IN2P3 (France), BMBF, DFG, and HGF (Germany), GSRT (Greece), OTKA and NKTH (Hungary), DAE and DST (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF and WCU (Korea), LAS (Lithuania), CINVESTAV, CONACYT, SEP, and UASLP-FAI (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), JINR (Armenia, Belarus, Georgia, Ukraine, Uzbekistan), MST and MAE (Russia), MSTDS (Serbia), MICINN and CPAN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK and TAEK (Turkey), STFC (U. K.), DOE and NSF (U. S.)
FMSR (Austria), FNRS, Belgium, FWO, Belgium, CNPq, Brazil, CAPES, Brazil, FAPERJ, Brazil, FAPESP, Brazil, MES (Bulgaria), CERN, CAS, China, MoST, China, NSFC, China, COLCIEN-CIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences, Estonia, Academy of Finland, ME, Finland, HIP, Finland, CEA, France, CNRS/IN2P3, France, BMBF, Germany, DFG, Germany, HGF, Germany, GSRT (Greece), OTKA, Hungary, NKTH, Hungary, DAE, India, DST, India, IPM (Iran), SFI (Ireland), INFN (Italy), NRF (Korea), LAS (Lithuania), CINVESTAV, Mexico, CONACYT, Mexico, SEP, Mexico, UASLP-FAI, Mexico, PAEC (Pakistan), SCSR (Poland), FCT (Portugal), JINR (Armenia), JINR (Belarus), JINR (Georgia), JINR (Ukraine), JINR (Uzbekistan), MST, Russia, MAE, Russia, MSTDS (Serbia), MICINN, Spain, CPAN, Spain, Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK, Turkey, TAEK, Turkey, STFC (United Kingdom), DOE, USA, NSF, USA, European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation, NICPB, Estonia FMSR (Austria), FNRS (Belgium), FWO (Belgium), CNPq (Brazil), CAPES (Brazil), FAPERJ (Brazil), FAPESP (Brazil), MES (Bulgaria), CERN, CAS (China), MoST (China), NSFC (China), COLCIENCIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences (Estonia), Academy of Finland, ME (Finland), HIP (Finland), CEA (France), CNRS/IN2P3 (France), BMBF, Germany, DFG (Germany), HGF (Germany), GSRT (Greece), OTKA (Hungary), NKTH (Hungary), DAE (India), DST (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF (Korea), LAS (Lithuania), CINVESTAV (Mexico), CONACYT (Mexico), SEP (Mexico), UASLP-FAI (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), MST (Russia), MAE (Russia), MSTDS (Serbia), MICINN (Spain), CPAN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK (Turkey), TAEK (Turkey), STFC (United Kingdom), DOE (USA), NSF (USA), European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation, NICPB (Estonia), JINR (Armenia), JINR (Belarus), JINR (Georgia), JINR (Ukraine), JINR (Uzbekistan)
FMSR (Austria), FNRS (Belgium), FWO (Belgium), CNPq (Brazil), CAPES (Brazil), FAPERJ (Brazil), FAPESP (Brazil), MES (Bulgaria), CERN, CAS (China), MoST (China), NSFC (China), COLCIENCIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences (Estonia), NICPB (Estonia), Academy of Finland, ME (Finland), HIP (Finland), CEA (France), CNRS/IN2P3 (France), BMBF, Germany, DFG (Germany), HGF (Germany), GSRT (Greece), OTKA (Hungary), NKTH (Hungary), DAE (India), DST (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF (Korea), LAS (Lithuania), CINVESTAV (Mexico), CONACYT (Mexico), SEP (Mexico), UASLP-FAI (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), JINR (Armenia), JINR (Belarus), JINR (Georgia), JINR (Ukraine), JINR (Uzbekistan), MST (Russia), MAE (Russia), MSTDS (Serbia), MICINN (Spain), CPAN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK (Turkey), TAEK (Turkey), STFC (U.K.), DOE (U.S.), NSF (U.S.) FMSR (Austria), FNRS (Belgium), FWO (Belgium), CNPq (Brazil), CAPES (Brazil), FAPERJ (Brazil), FAPESP (Brazil), MES (Bulgaria), CERN, CAS (China), MoST (China), NSFC (China), COLCIEN-CIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences (Estonia), NICPB (Estonia), Academy of Finland, ME (Finland), HIP (Finland), CEA (France), CNRS/IN2P3 (France), BMBF, Germany, DFG (Germany), HGF (Germany), GSRT (Greece), OTKA (Hungary), NKTH (Hungary), DAE (India), DST (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF (Korea), LAS (Lithuania), CINVESTAV (Mexico), CONACYT (Mexico), SEP (Mexico), UASLP-FAI (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), JINR (Armenia), JINR (Belarus), JINR (Georgia), JINR (Ukraine), JINR (Uzbekistan), MST (Russia), MAE (Russia), MSTDS (Serbia), MICINN (Spain), CPAN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK (Turkey), TAEK (Turkey), STFC (United Kingdom), DOE (USA), NSF (USA), European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation
FMSR (Austria), FNRS (Belgium), FWO (Belgium), CNPq (Brazil), CAPES (Brazil), FAPERJ (Brazil), FAPESP (Brazil), MES (Bulgaria), CERN, CAS (China), MoST (China), NSFC (China), COLCIENCIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences (Estonia), NICPB (Estonia), Academy of Finland, ME (Finland), HIP (Finland), CEA (France), CNRS/IN2P3 (France), BMBF, Germany, DFG (Germany), HGF (Germany), GSRT (Greece), OTKA (Hungary), NKTH (Hungary), DAE (India), DST (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF (Korea), LAS (Lithuania), CINVESTAV (Mexico), CONACYT (Mexico), SEP (Mexico), UASLP-FAI (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), JINR (Armenia), JINR (Belarus), JINR (Georgia), JINR (Ukraine), JINR (Uzbekistan), MST (Russia), MAE (Russia), MSTDS (Serbia), MICINN (Spain), CPAN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK (Turkey), TAEK (Turkey), STFC (United Kingdom), DOE (USA), NSF (USA), European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation FMSR (Austria), FNRS (Belgium), FWO (Belgium), CNPq (Brazil), CAPES (Brazil), FAPERJ (Brazil), FAPESP (Brazil), MES (Bulgaria), CERN, CAS (China), MoST (China), NSFC (China), COLCIENCIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences (Estonia), NICPB (Estonia), Academy of Finland, ME (Finland), HIP (Finland), CEA (France), CNRS/IN2P3 (France), BMBF, Germany, DFG (Germany), HGF (Germany), GSRT (Greece), OTKA (Hungary), NKTH (Hungary), DAE (India), DST (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF (Korea), LAS (Lithuania), CINVESTAV (Mexico), CONACYT (Mexico), SEP (Mexico), UASLP-FAI (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), MST (Russia), MAE (Russia), MSTDS (Serbia), MICINN (Spain), CPAN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK (Turkey), TAEK (Turkey), STFC (United Kingdom), DOE (USA), NSF (USA), European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation, JINR (Armenia), JINR (Belarus), JINR (Georgia), JINR (Ukraine), JINR (Uzbekistan)
FMSR (Austria), FNRS (Belgium), FWO (Belgium), CNPq (Brazil), CAPES (Brazil), FAPERJ (Brazil), FAPESP (Brazil), MES (Bulgaria), CERN, CAS (China), MoST (China), NSFC (China), COLCIEN-CIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences (Estonia), NICPB (Estonia), Academy of Finland, ME (Finland), HIP (Finland), CEA (France), CNRS/IN2P3 (France), BMBF, Germany, DFG (Germany), HGF (Germany), GSRT (Greece), OTKA (Hungary), NKTH (Hungary), DAE (India), DST (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF (Korea), LAS (Lithuania), CINVESTAV (Mexico), SEP (Mexico), UASLP-FAI (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), JINR (Armenia), JINR (Belarus), JINR (Georgia), JINR (Ukraine), JINR (Uzbekistan), MST (Russia), MAE (Russia), MSTDS (Serbia), MICINN (Spain), CPAN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK (Turkey), TAEK (Turkey), STFC (United Kingdom), DOE (USA), NSF (USA), European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation FMSR (Austria), FNRS (Belgium), FWO (Belgium), CNPq (Brazil), CAPES (Brazil), FAPERJ (Brazil), FAPESP (Brazil), MES (Bulgaria), CERN (China), CAS (China), MoST (China), NSFC (China), COLCIENCIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences and NICPB (Estonia), Academy of Finland, ME, and HIP (Finland), CEA (France), CNRS/IN2P3 (France), BMBF, Germany, DFG (Germany), HGF (Germany), GSRT (Greece), OTKA (Hungary), NKTH (Hungary), DAE (India), DST (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF (Korea), LAS (Lithuania), CINVESTAV (Mexico), CONACYT (Mexico), SEP (Mexico), UASLP-FAI (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), JINR (Armenia, Belarus, Georgia, Ukraine, Uzbekistan), MST (Russia), MAE (Russia), MSTDS (Serbia), MICINN, CPAN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK, TAEK (Turkey), STFC (United Kingdom), DOE (USA), NSF (USA), European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation
FMSR (Austria), FNRS (Belgium), FWO (Belgium), CNPq (Brazil), CAPES (Brazil), FAPERJ (Brazil), FAPESP (Brazil), MES (Bulgaria), CERN (China), CAS (China), MoST (China), NSFC (China), COLCIEN-CIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences (Estonia), NICPB (Estonia), Academy of Finland, ME (Finland), HIP (Finland), CEA (France), CNRS/IN2P3 (France), BMBF, Germany, DFG (Germany), HGF (Germany), GSRT (Greece), OTKA (Hungary), NKTH (Hungary), DAE (India), DST (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF (Korea), LAS (Lithuania), CINVESTAV (Mexico), CONACYT (Mexico), SEP (Mexico), UASLP-FAI (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), JINR (Armenia), JINR (Belarus), JINR (Georgia), JINR (Ukraine), JINR (Uzbekistan), MST (Russia), MAE (Russia), MSTDS (Serbia), MICINN (Spain), CPAN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK (Turkey), TAEK (Turkey), STFC (United Kingdom), DOE (USA, NSF (USA), European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation FMSR (Austria), FNRS (Belgium), FWO (Belgium), CNPq (Brazil), CAPES (Brazil), FAPERJ (Brazil), FAPESP (Brazil), MES (Bulgaria), CERN (China), CAS (China), MoST (China), NSFC (China), COLCIEN-CIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences (Estonia), NICPB (Estonia), Academy of Finland, ME (Finland), HIP (Finland), CEA (France), CNRS/IN2P3 (France), BMBF, Germany, DFG (Germany), HGF (Germany), GSRT (Greece), OTKA (Hungary), NKTH (Hungary), DAE (India), DST (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF (Korea), LAS (Lithuania), CINVESTAV (Mexico), CONACYT (Mexico), SEP (Mexico), UASLP-FAI (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), JINR (Armenia), JINR (Belarus), JINR (Georgia), JINR (Ukraine), JINR (Uzbekistan), MST (Russia), MAE (Russia), MSTDS (Serbia), MICINN (Spain, CPAN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK (Turkey), TAEK (Turkey), STFC (United Kingdom), DOE (USA), NSF (USA), European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation
FMSR (Austria), FNRS (Belgium), FWO (Belgium), CNPq (Brazil), CAPES (Brazil), FAPERJ (Brazil), FAPESP (Brazil), MES (Bulgaria), CERN (China), CAS (China), MoST (China), NSFC (China), COLCIEN-CIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences (Estonia), NICPB (Estonia, Academy of Finland, ME (Finland), HIP (Finland), CEA (France), CNRS/IN2P3 (France), BMBF, Germany, DFG (Germany), HGF (Germany), GSRT (Greece), OTKA (Hungary), NKTH (Hungary), DAE (India), DST (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF (Korea), LAS (Lithuania), CINVESTAV (Mexico), CONACYT (Mexico), SEP (Mexico), UASLP-FAI (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), JINR (Armenia), JINR (Belarus), JINR (Georgia), JINR (Ukraine), JINR (Uzbekistan), MST (Russia), MAE (Russia), MSTDS (Serbia), MICINN (Spain), CPAN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK (Turkey), TAEK (Turkey), STFC (United Kingdom), DOE (USA), NSF (USA), European Union, Leventis Foundation, A.P. Sloan Foundation, Alexander von Humboldt Foundation FMSR (Austria), FNRS, FWO (Belgium), CNPq, CAPES, FAPERJ, FAPESP (Brazil), MES (Bulgaria), CERN, CAS, MoST, NSFC (China), COLCIENCIAS (Colombia), MSES (Croatia), RPF (Cyprus), Academy of Sciences, NICPB (Estonia), Academy of Finland, ME, HIP (Finland), CEA, CNRS/IN2P3 (France), BMBF, Germany, DFG, HGF (Germany), GSRT (Greece), OTKA, NKTH (Hungary), DAE, DST (India), IPM (Iran), SFI (Ireland), INFN (Italy), NRF, WCU (Korea), LAS (Lithuania), CINVESTAV, CONACYT, SEP, UASLP-FAI (Mexico), PAEC (Pakistan), SCSR (Poland), FCT (Portugal), JINR (Armenia), JINR (Belarus), JINR (Georgia), JINR (Ukraine), JINR (Uzbekistan), MST, MAE (Russia), MSTD (Serbia), MICINN, CPAN (Spain), Swiss Funding Agencies (Switzerland), NSC (Taipei), TUBITAK, TAEK (Turkey), STFC (United Kingdom), DOE, NSF (U.S.)

Author's Bibliography

Monte Karlo simulacija fona HPGe detektora od radionuklida, kosmičkog i skyshine zračenja

Maletić, Dimitrije; Udovičić, Vladimir; Joković, Dejan; Banjanac, Radomir; Dragić, Aleksandar; Savić, Mihailo; Veselinović, Nikola

(Београд : Институт за нуклеарне науке "Винча" : Друштво за заштиту од зрачења Србије и Црне Горе, 2017)

TY  - CONF
AU  - Maletić, Dimitrije
AU  - Udovičić, Vladimir
AU  - Joković, Dejan
AU  - Banjanac, Radomir
AU  - Dragić, Aleksandar
AU  - Savić, Mihailo
AU  - Veselinović, Nikola
PY  - 2017
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/8311
UR  - https://plus.sr.cobiss.net/opac7/bib/245691404
UR  - http://dzz.org.rs/wp-content/uploads/2013/06/Zbornik_XXIX_Simpozijum_DZZ_SCG_Srebrno_jezero_2.pdf
AB  - U Niskofonskoj laboratoriji za Nuklearnu fiziku, više godina se izučavaju osobine fona
HPGe detektora. Izučavanje fona važno je za eksperimente sa malim brojem
interesantnih dogadjaja ili retkih procesa u podzemnim laboratorijama. Izučavanja
fona u Niskofonskoj laboratoriji započeta su izučavanjem fona zračenja od
radionuklida, kao i fona od kosmičkog zračenja, koincidentnim tehnikama. Nedavno je
izučavan i fon od skyshine zračenja. U ovom radu je predstavljena Monte Karlo
simulacija fona HPGe detektora koji dolazi od pomenuta tri izvora zračenja. Rezultati
simulacija kosmičkog zračenja odlično se slažu sa eksperimentalnim rezultatima, dok se
za druge komponente mogu poboljšati. Postoji prednost simulacija koje daju razloženi
fon na tri komponente, koja omogućava da se rezultati simulacija tri komponente fona
za jednu laboratoriju mogu simulirati za druge podzemne ili nadzemne laboratorije
menjanjem parametara u simulacionim programima. Fon se može simulirati za
laboratorije koje mogu biti na različitoj geografskoj širini, nadmorskoj visini, sa
različitim sastavom radionuklida u zemljištu i geometrijom laboratorije u kojoj se vrše
merenja. Predstavljeni su nedostaci simulacija i da se rezultati mogu poboljšati radeći
na detaljima u nekoliko faza simulacije.
AB  - In the Low Background Laboratory for Nuclear Physics background radiation of the
HPGe detector was researched. This research is important for experiments with small
number of interesting events or rare processes studied in underground laboratories.
The background radiation research started with research of background from
radionuclides and Cosmic rays using coincidence techniques. Recently, the skyshine
radiation was researched. In this paper the Monte Carlo simulation of HPGe
background is presented. Results for cosmic ray simulations agree very good with the
experimental results, and for others can be improved. The simulation for other ground
and underground laboratories can be done, by changing longitude, latitude and
elevation, composition of radionuclides in soil. The possible improvements of the
simulations are discussed.
PB  - Београд : Институт за нуклеарне науке "Винча" : Друштво за заштиту од зрачења Србије и Црне Горе
C3  - 29. симпозијум ДЗЗСЦГ : зборник радова
T1  - Monte Karlo simulacija fona HPGe detektora od radionuklida, kosmičkog i skyshine zračenja
T1  - Monte Carlo simulation of HPGe detector background coming from radionuclides, cosmic and skyshine radiation
SP  - 438
EP  - 442
UR  - https://hdl.handle.net/21.15107/rcub_vinar_8311
ER  - 
@conference{
author = "Maletić, Dimitrije and Udovičić, Vladimir and Joković, Dejan and Banjanac, Radomir and Dragić, Aleksandar and Savić, Mihailo and Veselinović, Nikola",
year = "2017",
abstract = "U Niskofonskoj laboratoriji za Nuklearnu fiziku, više godina se izučavaju osobine fona
HPGe detektora. Izučavanje fona važno je za eksperimente sa malim brojem
interesantnih dogadjaja ili retkih procesa u podzemnim laboratorijama. Izučavanja
fona u Niskofonskoj laboratoriji započeta su izučavanjem fona zračenja od
radionuklida, kao i fona od kosmičkog zračenja, koincidentnim tehnikama. Nedavno je
izučavan i fon od skyshine zračenja. U ovom radu je predstavljena Monte Karlo
simulacija fona HPGe detektora koji dolazi od pomenuta tri izvora zračenja. Rezultati
simulacija kosmičkog zračenja odlično se slažu sa eksperimentalnim rezultatima, dok se
za druge komponente mogu poboljšati. Postoji prednost simulacija koje daju razloženi
fon na tri komponente, koja omogućava da se rezultati simulacija tri komponente fona
za jednu laboratoriju mogu simulirati za druge podzemne ili nadzemne laboratorije
menjanjem parametara u simulacionim programima. Fon se može simulirati za
laboratorije koje mogu biti na različitoj geografskoj širini, nadmorskoj visini, sa
različitim sastavom radionuklida u zemljištu i geometrijom laboratorije u kojoj se vrše
merenja. Predstavljeni su nedostaci simulacija i da se rezultati mogu poboljšati radeći
na detaljima u nekoliko faza simulacije., In the Low Background Laboratory for Nuclear Physics background radiation of the
HPGe detector was researched. This research is important for experiments with small
number of interesting events or rare processes studied in underground laboratories.
The background radiation research started with research of background from
radionuclides and Cosmic rays using coincidence techniques. Recently, the skyshine
radiation was researched. In this paper the Monte Carlo simulation of HPGe
background is presented. Results for cosmic ray simulations agree very good with the
experimental results, and for others can be improved. The simulation for other ground
and underground laboratories can be done, by changing longitude, latitude and
elevation, composition of radionuclides in soil. The possible improvements of the
simulations are discussed.",
publisher = "Београд : Институт за нуклеарне науке "Винча" : Друштво за заштиту од зрачења Србије и Црне Горе",
journal = "29. симпозијум ДЗЗСЦГ : зборник радова",
title = "Monte Karlo simulacija fona HPGe detektora od radionuklida, kosmičkog i skyshine zračenja, Monte Carlo simulation of HPGe detector background coming from radionuclides, cosmic and skyshine radiation",
pages = "438-442",
url = "https://hdl.handle.net/21.15107/rcub_vinar_8311"
}
Maletić, D., Udovičić, V., Joković, D., Banjanac, R., Dragić, A., Savić, M.,& Veselinović, N.. (2017). Monte Karlo simulacija fona HPGe detektora od radionuklida, kosmičkog i skyshine zračenja. in 29. симпозијум ДЗЗСЦГ : зборник радова
Београд : Институт за нуклеарне науке "Винча" : Друштво за заштиту од зрачења Србије и Црне Горе., 438-442.
https://hdl.handle.net/21.15107/rcub_vinar_8311
Maletić D, Udovičić V, Joković D, Banjanac R, Dragić A, Savić M, Veselinović N. Monte Karlo simulacija fona HPGe detektora od radionuklida, kosmičkog i skyshine zračenja. in 29. симпозијум ДЗЗСЦГ : зборник радова. 2017;:438-442.
https://hdl.handle.net/21.15107/rcub_vinar_8311 .
Maletić, Dimitrije, Udovičić, Vladimir, Joković, Dejan, Banjanac, Radomir, Dragić, Aleksandar, Savić, Mihailo, Veselinović, Nikola, "Monte Karlo simulacija fona HPGe detektora od radionuklida, kosmičkog i skyshine zračenja" in 29. симпозијум ДЗЗСЦГ : зборник радова (2017):438-442,
https://hdl.handle.net/21.15107/rcub_vinar_8311 .

Нискофонска лабораторија Института за физику - првих двадесет година

Udovičić, Vladimir; Dragić, Aleksandar; Banjanac, Radomir; Joković, Dejan; Maletić, Dimitrije; Veselinović, Nikola; Savić, Mihailo; Knežević, David

(Београд : Институт за нуклеарне науке "Винча" : Друштво за заштиту од зрачења Србије и Црне Горе, 2017)

TY  - CONF
AU  - Udovičić, Vladimir
AU  - Dragić, Aleksandar
AU  - Banjanac, Radomir
AU  - Joković, Dejan
AU  - Maletić, Dimitrije
AU  - Veselinović, Nikola
AU  - Savić, Mihailo
AU  - Knežević, David
PY  - 2017
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/8310
UR  - https://plus.sr.cobiss.net/opac7/bib/245691404
UR  - http://dzz.org.rs/wp-content/uploads/2013/06/Zbornik_XXIX_Simpozijum_DZZ_SCG_Srebrno_jezero_2.pdf
AB  - Представљена је делатност сарадника Нискофонске лабораторије од њене
изградње до данас. Почетна мерења концентрације радона, интензитета
космичког зрачења и фона гама зрачења временом су, методолошким приступом,
прерасла у континуирани мониторинг. Статистички значајни резулатати
добијени након дуготрајних мерења, допуњени поузданим симулацијама и анализирани напредним мултиваријантним техникама јасно идентификују Нискофонску лабораторију у свим њеним областима истраживања.
AB  - The most important scientific activities in the Low-background laboratory are described
for the entire period of its existance. Over the period of twenty years, initial
measurements of radon concentration, cosmic-rays intensity as well as gamma
radiation background through metodological approach evolved into consistent
continual monitoring. Statistically significant results obtained by long-term
measurements, enriched by reliable simulation and analyzed using advanced analysis
tools clearly identify our Lab.
PB  - Београд : Институт за нуклеарне науке "Винча" : Друштво за заштиту од зрачења Србије и Црне Горе
C3  - 29. симпозијум ДЗЗСЦГ : зборник радова
T1  - Нискофонска лабораторија Института за физику - првих двадесет година
T1  - Low-background laboratory for nuclear physics in the Institute of physics - the first twenty years of existence
SP  - 429
EP  - 437
UR  - https://hdl.handle.net/21.15107/rcub_vinar_8310
ER  - 
@conference{
author = "Udovičić, Vladimir and Dragić, Aleksandar and Banjanac, Radomir and Joković, Dejan and Maletić, Dimitrije and Veselinović, Nikola and Savić, Mihailo and Knežević, David",
year = "2017",
abstract = "Представљена је делатност сарадника Нискофонске лабораторије од њене
изградње до данас. Почетна мерења концентрације радона, интензитета
космичког зрачења и фона гама зрачења временом су, методолошким приступом,
прерасла у континуирани мониторинг. Статистички значајни резулатати
добијени након дуготрајних мерења, допуњени поузданим симулацијама и анализирани напредним мултиваријантним техникама јасно идентификују Нискофонску лабораторију у свим њеним областима истраживања., The most important scientific activities in the Low-background laboratory are described
for the entire period of its existance. Over the period of twenty years, initial
measurements of radon concentration, cosmic-rays intensity as well as gamma
radiation background through metodological approach evolved into consistent
continual monitoring. Statistically significant results obtained by long-term
measurements, enriched by reliable simulation and analyzed using advanced analysis
tools clearly identify our Lab.",
publisher = "Београд : Институт за нуклеарне науке "Винча" : Друштво за заштиту од зрачења Србије и Црне Горе",
journal = "29. симпозијум ДЗЗСЦГ : зборник радова",
title = "Нискофонска лабораторија Института за физику - првих двадесет година, Low-background laboratory for nuclear physics in the Institute of physics - the first twenty years of existence",
pages = "429-437",
url = "https://hdl.handle.net/21.15107/rcub_vinar_8310"
}
Udovičić, V., Dragić, A., Banjanac, R., Joković, D., Maletić, D., Veselinović, N., Savić, M.,& Knežević, D.. (2017). Нискофонска лабораторија Института за физику - првих двадесет година. in 29. симпозијум ДЗЗСЦГ : зборник радова
Београд : Институт за нуклеарне науке "Винча" : Друштво за заштиту од зрачења Србије и Црне Горе., 429-437.
https://hdl.handle.net/21.15107/rcub_vinar_8310
Udovičić V, Dragić A, Banjanac R, Joković D, Maletić D, Veselinović N, Savić M, Knežević D. Нискофонска лабораторија Института за физику - првих двадесет година. in 29. симпозијум ДЗЗСЦГ : зборник радова. 2017;:429-437.
https://hdl.handle.net/21.15107/rcub_vinar_8310 .
Udovičić, Vladimir, Dragić, Aleksandar, Banjanac, Radomir, Joković, Dejan, Maletić, Dimitrije, Veselinović, Nikola, Savić, Mihailo, Knežević, David, "Нискофонска лабораторија Института за физику - првих двадесет година" in 29. симпозијум ДЗЗСЦГ : зборник радова (2017):429-437,
https://hdl.handle.net/21.15107/rcub_vinar_8310 .

Korišćenje multivarijantne analize za predviđanje geogenog radonskog potencijala

Forkapić, Sofija; Maletić, Dimitrije; Vasin, Jovica; Bikit, Kristina; Mrđa, Dušan; Bikit, Ištvan S.; Udovičić, Vladimir; Banjanac, Radomir

(Београд : Институт за нуклеарне науке "Винча" : Друштво за заштиту од зрачења Србије и Црне Горе, 2017)

TY  - CONF
AU  - Forkapić, Sofija
AU  - Maletić, Dimitrije
AU  - Vasin, Jovica
AU  - Bikit, Kristina
AU  - Mrđa, Dušan
AU  - Bikit, Ištvan S.
AU  - Udovičić, Vladimir
AU  - Banjanac, Radomir
PY  - 2017
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/8276
UR  - https://plus.sr.cobiss.net/opac7/bib/245691404
UR  - http://dzz.org.rs/wp-content/uploads/2013/06/Zbornik_XXIX_Simpozijum_DZZ_SCG_Srebrno_jezero_2.pdf
AB  - Geogeni radonski potencijal koji izdvaja radon u podzemnim slojevima kao dominantan
uzrok akumulacije radona u zatvorenim prostorijama i koji je nezavisan od ljudskog
uticaja i vremenski konstantan u geološkim okvirima predstavlja glavni alat za
iznalaženje radonom ugroženih područja. U nedostatku podataka za permeabilnost
zemljišta za radon i malog broja merenja radona u zemljištu, upotrebljena je
multivarijantna analiza velikog broja raspoloživih geohemijskih podataka, merenja
radioaktivnosti zemljišta i koncentracija aktivnosti radona u zatvorenim prostorijama
datih lokacija na području Vojvodine. Nekoliko uporedivih metoda iz ROOT okvira za
analize softverskog paketa TMVA je korišćeno za analizu zavisnosti koncentracije
radona u zatvorenom od mnoštva ulaznih varijabli. BDTG kao najpodobnija metoda je
pokazala da su varijable sa najvećim uticajem na koncentraciju radona u zatvorenim
prostorijama pored sadržaja ukupnog azota, koncentracije aktivnosti radionuklida u
zemljištu na profilu dubine od 30 cm i sadržaj humusa i gline. Dobijeni rezultati
pokazuju dobro slaganje sa nedavnim ispitivanjem emanacije radona iz zemljišta na
području grada Novog Sada.
AB  - The most dominant source of indoor radon is the underlying soil, so the enhanced levels
of radon are usually expected in mountain regions and geology units with high radium
and uranium content in surface soils. Laboratory for radioactivity and dose
measurement, Faculty of Sciences, University of Novi Sad has rich databases of natural
radionuclides concentrations in Vojvodina soil and also of indoor radon concentrations
for the region of Vojvodina, Northern Province of Serbia. In this paper, we present the
results of correlative and multivariate analysis of these results and geochemical
characteristics of soil in order to estimate the geogenic radon potential. The correlative
and multivariate analysis were done using Toolkit for Multivariate Analysis software
package TMVA package, which uses several comparable multivariate methods for our
analysis. The evaluation ranking results based on the best signal efficiency and purity,
show that the Boosted Decision Trees (BDT) and Multi Layer Preceptor (MLP), based
on Artificial Neural Network (ANN), are multivariate methods which give the best
results in the analysis. The BDTG multivariate method shows that variables with the
highest importance are radio-nuclides activity on 30 cm depth. Moreover, the
multivariate regression methods give a good approximation of radon activity using full
set of input variables
PB  - Београд : Институт за нуклеарне науке "Винча" : Друштво за заштиту од зрачења Србије и Црне Горе
C3  - 29. симпозијум ДЗЗСЦГ : зборник радова
T1  - Korišćenje multivarijantne analize za predviđanje geogenog radonskog potencijala
T1  - Multivariate analysis application for geogeny radon potential prediction
SP  - 210
EP  - 218
UR  - https://hdl.handle.net/21.15107/rcub_vinar_8276
ER  - 
@conference{
author = "Forkapić, Sofija and Maletić, Dimitrije and Vasin, Jovica and Bikit, Kristina and Mrđa, Dušan and Bikit, Ištvan S. and Udovičić, Vladimir and Banjanac, Radomir",
year = "2017",
abstract = "Geogeni radonski potencijal koji izdvaja radon u podzemnim slojevima kao dominantan
uzrok akumulacije radona u zatvorenim prostorijama i koji je nezavisan od ljudskog
uticaja i vremenski konstantan u geološkim okvirima predstavlja glavni alat za
iznalaženje radonom ugroženih područja. U nedostatku podataka za permeabilnost
zemljišta za radon i malog broja merenja radona u zemljištu, upotrebljena je
multivarijantna analiza velikog broja raspoloživih geohemijskih podataka, merenja
radioaktivnosti zemljišta i koncentracija aktivnosti radona u zatvorenim prostorijama
datih lokacija na području Vojvodine. Nekoliko uporedivih metoda iz ROOT okvira za
analize softverskog paketa TMVA je korišćeno za analizu zavisnosti koncentracije
radona u zatvorenom od mnoštva ulaznih varijabli. BDTG kao najpodobnija metoda je
pokazala da su varijable sa najvećim uticajem na koncentraciju radona u zatvorenim
prostorijama pored sadržaja ukupnog azota, koncentracije aktivnosti radionuklida u
zemljištu na profilu dubine od 30 cm i sadržaj humusa i gline. Dobijeni rezultati
pokazuju dobro slaganje sa nedavnim ispitivanjem emanacije radona iz zemljišta na
području grada Novog Sada., The most dominant source of indoor radon is the underlying soil, so the enhanced levels
of radon are usually expected in mountain regions and geology units with high radium
and uranium content in surface soils. Laboratory for radioactivity and dose
measurement, Faculty of Sciences, University of Novi Sad has rich databases of natural
radionuclides concentrations in Vojvodina soil and also of indoor radon concentrations
for the region of Vojvodina, Northern Province of Serbia. In this paper, we present the
results of correlative and multivariate analysis of these results and geochemical
characteristics of soil in order to estimate the geogenic radon potential. The correlative
and multivariate analysis were done using Toolkit for Multivariate Analysis software
package TMVA package, which uses several comparable multivariate methods for our
analysis. The evaluation ranking results based on the best signal efficiency and purity,
show that the Boosted Decision Trees (BDT) and Multi Layer Preceptor (MLP), based
on Artificial Neural Network (ANN), are multivariate methods which give the best
results in the analysis. The BDTG multivariate method shows that variables with the
highest importance are radio-nuclides activity on 30 cm depth. Moreover, the
multivariate regression methods give a good approximation of radon activity using full
set of input variables",
publisher = "Београд : Институт за нуклеарне науке "Винча" : Друштво за заштиту од зрачења Србије и Црне Горе",
journal = "29. симпозијум ДЗЗСЦГ : зборник радова",
title = "Korišćenje multivarijantne analize za predviđanje geogenog radonskog potencijala, Multivariate analysis application for geogeny radon potential prediction",
pages = "210-218",
url = "https://hdl.handle.net/21.15107/rcub_vinar_8276"
}
Forkapić, S., Maletić, D., Vasin, J., Bikit, K., Mrđa, D., Bikit, I. S., Udovičić, V.,& Banjanac, R.. (2017). Korišćenje multivarijantne analize za predviđanje geogenog radonskog potencijala. in 29. симпозијум ДЗЗСЦГ : зборник радова
Београд : Институт за нуклеарне науке "Винча" : Друштво за заштиту од зрачења Србије и Црне Горе., 210-218.
https://hdl.handle.net/21.15107/rcub_vinar_8276
Forkapić S, Maletić D, Vasin J, Bikit K, Mrđa D, Bikit IS, Udovičić V, Banjanac R. Korišćenje multivarijantne analize za predviđanje geogenog radonskog potencijala. in 29. симпозијум ДЗЗСЦГ : зборник радова. 2017;:210-218.
https://hdl.handle.net/21.15107/rcub_vinar_8276 .
Forkapić, Sofija, Maletić, Dimitrije, Vasin, Jovica, Bikit, Kristina, Mrđa, Dušan, Bikit, Ištvan S., Udovičić, Vladimir, Banjanac, Radomir, "Korišćenje multivarijantne analize za predviđanje geogenog radonskog potencijala" in 29. симпозијум ДЗЗСЦГ : зборник радова (2017):210-218,
https://hdl.handle.net/21.15107/rcub_vinar_8276 .

Studija slučaja sezonske varijacije koncentracije radona u porodičnoj kući u Srbiji

Udovičić, Vladimir; Maletić, Dimitrije; Dragić, Aleksandar; Banjanac, Radomir; Joković, Dejan; Forkapić, Sofija

(Београд : Институт за нуклеарне науке "Винча" : Друштво за заштиту од зрачења Србије и Црне Горе, 2017)

TY  - CONF
AU  - Udovičić, Vladimir
AU  - Maletić, Dimitrije
AU  - Dragić, Aleksandar
AU  - Banjanac, Radomir
AU  - Joković, Dejan
AU  - Forkapić, Sofija
PY  - 2017
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/8272
UR  - https://plus.sr.cobiss.net/opac7/bib/245691404
UR  - http://dzz.org.rs/wp-content/uploads/2013/06/Zbornik_XXIX_Simpozijum_DZZ_SCG_Srebrno_jezero_2.pdf
AB  - Usled uticaja velikog broja parametara, ponašanje radona u zatvorenim prostorijama
ima složenu dinamiku. Na osnovu merenja koncentracije radona, izdvajaju se dve
periodičnosti, dnevna i sezonska. U ovom radu su prikazani rezultati merenja koncentracije radona u jednoj tipičnoj porodičnoj kući u Srbiji, u toku tri sukcesivne godine u
februaru i julu svake godine. Korišćene su sledeće tehnike merenja radona: aktivna i
metoda ugljenih kanistara. Takođe su prikazani rezultati ovih interkomparativnih
merenja.
AB  - Due to the impact of a large number of parameters, the behavior of radon indoors has
complex dynamics. Radon time-series analysis, based on the short-term indoor radon
measurements performed worldwide, shows two main periodicity: daily and seasonal.
This paper presents the results of the indoor radon measurements in a typical family
house in Serbia, during three successive years in February and July each year. The
following techniques were used for radon measurements: active and charcoal canister
methods. It also presents the results of these intercomparison measurements.
PB  - Београд : Институт за нуклеарне науке "Винча" : Друштво за заштиту од зрачења Србије и Црне Горе
C3  - 29. симпозијум ДЗЗСЦГ : зборник радова
T1  - Studija slučaja sezonske varijacije koncentracije radona u porodičnoj kući u Srbiji
T1  - Case study of the indoor radon seasonal variability in the family house in Serbia
SP  - 179
EP  - 182
UR  - https://hdl.handle.net/21.15107/rcub_vinar_8272
ER  - 
@conference{
author = "Udovičić, Vladimir and Maletić, Dimitrije and Dragić, Aleksandar and Banjanac, Radomir and Joković, Dejan and Forkapić, Sofija",
year = "2017",
abstract = "Usled uticaja velikog broja parametara, ponašanje radona u zatvorenim prostorijama
ima složenu dinamiku. Na osnovu merenja koncentracije radona, izdvajaju se dve
periodičnosti, dnevna i sezonska. U ovom radu su prikazani rezultati merenja koncentracije radona u jednoj tipičnoj porodičnoj kući u Srbiji, u toku tri sukcesivne godine u
februaru i julu svake godine. Korišćene su sledeće tehnike merenja radona: aktivna i
metoda ugljenih kanistara. Takođe su prikazani rezultati ovih interkomparativnih
merenja., Due to the impact of a large number of parameters, the behavior of radon indoors has
complex dynamics. Radon time-series analysis, based on the short-term indoor radon
measurements performed worldwide, shows two main periodicity: daily and seasonal.
This paper presents the results of the indoor radon measurements in a typical family
house in Serbia, during three successive years in February and July each year. The
following techniques were used for radon measurements: active and charcoal canister
methods. It also presents the results of these intercomparison measurements.",
publisher = "Београд : Институт за нуклеарне науке "Винча" : Друштво за заштиту од зрачења Србије и Црне Горе",
journal = "29. симпозијум ДЗЗСЦГ : зборник радова",
title = "Studija slučaja sezonske varijacije koncentracije radona u porodičnoj kući u Srbiji, Case study of the indoor radon seasonal variability in the family house in Serbia",
pages = "179-182",
url = "https://hdl.handle.net/21.15107/rcub_vinar_8272"
}
Udovičić, V., Maletić, D., Dragić, A., Banjanac, R., Joković, D.,& Forkapić, S.. (2017). Studija slučaja sezonske varijacije koncentracije radona u porodičnoj kući u Srbiji. in 29. симпозијум ДЗЗСЦГ : зборник радова
Београд : Институт за нуклеарне науке "Винча" : Друштво за заштиту од зрачења Србије и Црне Горе., 179-182.
https://hdl.handle.net/21.15107/rcub_vinar_8272
Udovičić V, Maletić D, Dragić A, Banjanac R, Joković D, Forkapić S. Studija slučaja sezonske varijacije koncentracije radona u porodičnoj kući u Srbiji. in 29. симпозијум ДЗЗСЦГ : зборник радова. 2017;:179-182.
https://hdl.handle.net/21.15107/rcub_vinar_8272 .
Udovičić, Vladimir, Maletić, Dimitrije, Dragić, Aleksandar, Banjanac, Radomir, Joković, Dejan, Forkapić, Sofija, "Studija slučaja sezonske varijacije koncentracije radona u porodičnoj kući u Srbiji" in 29. симпозијум ДЗЗСЦГ : зборник радова (2017):179-182,
https://hdl.handle.net/21.15107/rcub_vinar_8272 .

First steps towards national radon action plan in Serbia

Udovičić, Vladimir; Maletić, Dimitrije; Eremić-Savković, Maja; Pantelić, Gordana K.; Ujić, Predrag; Čeliković, Igor T.; Forkapic, Sofija; Nikezić, Dragoslav; Markovic, Vladimir M.; Arsić, Vesna; Ilić, Jovana

(2016)

TY  - JOUR
AU  - Udovičić, Vladimir
AU  - Maletić, Dimitrije
AU  - Eremić-Savković, Maja
AU  - Pantelić, Gordana K.
AU  - Ujić, Predrag
AU  - Čeliković, Igor T.
AU  - Forkapic, Sofija
AU  - Nikezić, Dragoslav
AU  - Markovic, Vladimir M.
AU  - Arsić, Vesna
AU  - Ilić, Jovana
PY  - 2016
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/1250
AB  - Radon problem has a special attention in many countries in the world and the most of them have established national radon programmes. The radon issues in Serbia have not been approached in a systematic and organized way. Currently, there are many research groups and institutions working in radon field, and it is a good basis to integrate all these activities into a comprehensive national programme to define the strategic objectives and action plan for the next few years. Also, Serbia as a candidate for membership in the EU is obliged to harmonize its legislation, including the field of radiation protection in which the radon issues has an important role. In this report, a brief history of radon research, present status and plans for the future activity on radon issues in Serbia are presented. Regarding the long-term plans, the establishment and implementation of the Radon Action Plan with the primary goal of raising awareness about the harmful effects of public exposure to radon and implementing a set of measures for its reduction. In that sense, the synergy between the national, regional and local organizations responsible for public health and radiation protection must be achieved.
T2  - Nukleonika
T1  - First steps towards national radon action plan in Serbia
VL  - 61
IS  - 3
SP  - 361
EP  - 365
DO  - 10.1515/nuka-2016-0060
ER  - 
@article{
author = "Udovičić, Vladimir and Maletić, Dimitrije and Eremić-Savković, Maja and Pantelić, Gordana K. and Ujić, Predrag and Čeliković, Igor T. and Forkapic, Sofija and Nikezić, Dragoslav and Markovic, Vladimir M. and Arsić, Vesna and Ilić, Jovana",
year = "2016",
abstract = "Radon problem has a special attention in many countries in the world and the most of them have established national radon programmes. The radon issues in Serbia have not been approached in a systematic and organized way. Currently, there are many research groups and institutions working in radon field, and it is a good basis to integrate all these activities into a comprehensive national programme to define the strategic objectives and action plan for the next few years. Also, Serbia as a candidate for membership in the EU is obliged to harmonize its legislation, including the field of radiation protection in which the radon issues has an important role. In this report, a brief history of radon research, present status and plans for the future activity on radon issues in Serbia are presented. Regarding the long-term plans, the establishment and implementation of the Radon Action Plan with the primary goal of raising awareness about the harmful effects of public exposure to radon and implementing a set of measures for its reduction. In that sense, the synergy between the national, regional and local organizations responsible for public health and radiation protection must be achieved.",
journal = "Nukleonika",
title = "First steps towards national radon action plan in Serbia",
volume = "61",
number = "3",
pages = "361-365",
doi = "10.1515/nuka-2016-0060"
}
Udovičić, V., Maletić, D., Eremić-Savković, M., Pantelić, G. K., Ujić, P., Čeliković, I. T., Forkapic, S., Nikezić, D., Markovic, V. M., Arsić, V.,& Ilić, J.. (2016). First steps towards national radon action plan in Serbia. in Nukleonika, 61(3), 361-365.
https://doi.org/10.1515/nuka-2016-0060
Udovičić V, Maletić D, Eremić-Savković M, Pantelić GK, Ujić P, Čeliković IT, Forkapic S, Nikezić D, Markovic VM, Arsić V, Ilić J. First steps towards national radon action plan in Serbia. in Nukleonika. 2016;61(3):361-365.
doi:10.1515/nuka-2016-0060 .
Udovičić, Vladimir, Maletić, Dimitrije, Eremić-Savković, Maja, Pantelić, Gordana K., Ujić, Predrag, Čeliković, Igor T., Forkapic, Sofija, Nikezić, Dragoslav, Markovic, Vladimir M., Arsić, Vesna, Ilić, Jovana, "First steps towards national radon action plan in Serbia" in Nukleonika, 61, no. 3 (2016):361-365,
https://doi.org/10.1515/nuka-2016-0060 . .
5
6
5

Predictability of Lead-210 in Surface Air Based on Multivariate Analysis

Ajtić, Jelena V.; Maletić, Dimitrije; Stratimirovic, Dorde; Blesic, Suzana; Nikolić, Jelena D.; Durdevic, Vladimir; Todorović, Dragana

(2015)

TY  - CONF
AU  - Ajtić, Jelena V.
AU  - Maletić, Dimitrije
AU  - Stratimirovic, Dorde
AU  - Blesic, Suzana
AU  - Nikolić, Jelena D.
AU  - Durdevic, Vladimir
AU  - Todorović, Dragana
PY  - 2015
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/7129
AB  - Dependence of the lead-210 activity concentration in surface air on meteorological variables and teleconnection indices is investigated using multivariate analysis, which gives the Boosted Decision Trees method as the most suitable for variable analysis. A mapped functional behaviour of the lead-210 activity concentration is further obtained, and used to test predictability of lead-210 in surface air. The results show an agreement between the predicted and measured values. The temporal evolution of the measured activities is satisfactorily matched by the prediction. The largest qualitative differences are obtained for winter months.
C3  - RAD Conference Proceedings
T1  - Predictability of Lead-210 in Surface Air Based on Multivariate Analysis
SP  - 317
EP  - 322
UR  - https://hdl.handle.net/21.15107/rcub_vinar_7129
ER  - 
@conference{
author = "Ajtić, Jelena V. and Maletić, Dimitrije and Stratimirovic, Dorde and Blesic, Suzana and Nikolić, Jelena D. and Durdevic, Vladimir and Todorović, Dragana",
year = "2015",
abstract = "Dependence of the lead-210 activity concentration in surface air on meteorological variables and teleconnection indices is investigated using multivariate analysis, which gives the Boosted Decision Trees method as the most suitable for variable analysis. A mapped functional behaviour of the lead-210 activity concentration is further obtained, and used to test predictability of lead-210 in surface air. The results show an agreement between the predicted and measured values. The temporal evolution of the measured activities is satisfactorily matched by the prediction. The largest qualitative differences are obtained for winter months.",
journal = "RAD Conference Proceedings",
title = "Predictability of Lead-210 in Surface Air Based on Multivariate Analysis",
pages = "317-322",
url = "https://hdl.handle.net/21.15107/rcub_vinar_7129"
}
Ajtić, J. V., Maletić, D., Stratimirovic, D., Blesic, S., Nikolić, J. D., Durdevic, V.,& Todorović, D.. (2015). Predictability of Lead-210 in Surface Air Based on Multivariate Analysis. in RAD Conference Proceedings, 317-322.
https://hdl.handle.net/21.15107/rcub_vinar_7129
Ajtić JV, Maletić D, Stratimirovic D, Blesic S, Nikolić JD, Durdevic V, Todorović D. Predictability of Lead-210 in Surface Air Based on Multivariate Analysis. in RAD Conference Proceedings. 2015;:317-322.
https://hdl.handle.net/21.15107/rcub_vinar_7129 .
Ajtić, Jelena V., Maletić, Dimitrije, Stratimirovic, Dorde, Blesic, Suzana, Nikolić, Jelena D., Durdevic, Vladimir, Todorović, Dragana, "Predictability of Lead-210 in Surface Air Based on Multivariate Analysis" in RAD Conference Proceedings (2015):317-322,
https://hdl.handle.net/21.15107/rcub_vinar_7129 .

Plasma Induced DNA Damage: Comparison with the Effects Of Ionizing Radiation And Establishing Effective Treatment Doses

Lazović, Saša; Maletić, Dimitrije; Leskovac, Andreja; Filipović, Jelena G.; Puač, N.; Malović, Gordana N.; Joksić, Gordana; Petrović, Z. Lj.

(2014)

TY  - CONF
AU  - Lazović, Saša
AU  - Maletić, Dimitrije
AU  - Leskovac, Andreja
AU  - Filipović, Jelena G.
AU  - Puač, N.
AU  - Malović, Gordana N.
AU  - Joksić, Gordana
AU  - Petrović, Z. Lj.
PY  - 2014
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/10653
AB  - Atmospheric pressure plasma sources such as the plasma needle are being used for wound and chronic wound healing, cancer cell removal, stem cell manipulations, in dermatology, surgery, dentistry, etc. [1,2]. In our previous work we have optimized plasma needle parameters to efficiently sterilize E. Coli and S. Aureus in planktonic samples without causing damage to the peripheral blood mesenchymal stem cells used as a model for surrounding tissue [3]. Plasma treatments of human periodontal ligament mesenchymal stem cells have led to a promotion of osteogenic differentiation without affecting cell viability [4]. These results can be important for dentistry, especially for possible support or alternative to conventional regenerative procedures, such as guided tissue regeneration, the use of bone replacement grafts, and application of exogenous growth factors or proteins. Besides the promising short term effects of atmospheric non-thermal plasma on cells, it is necessary to study the long term effects, like for example DNA damage in order to prevent undesirable effects.
C3  - National Symposium on Plasma Science and Technology & International Conference on Plasma Science and Technology - PLASMA 2014 (29; 2014; Kotayyam, India)
T1  - Plasma Induced DNA Damage: Comparison with the Effects Of Ionizing Radiation And Establishing Effective Treatment Doses
SP  - 34
UR  - https://hdl.handle.net/21.15107/rcub_vinar_10653
ER  - 
@conference{
author = "Lazović, Saša and Maletić, Dimitrije and Leskovac, Andreja and Filipović, Jelena G. and Puač, N. and Malović, Gordana N. and Joksić, Gordana and Petrović, Z. Lj.",
year = "2014",
abstract = "Atmospheric pressure plasma sources such as the plasma needle are being used for wound and chronic wound healing, cancer cell removal, stem cell manipulations, in dermatology, surgery, dentistry, etc. [1,2]. In our previous work we have optimized plasma needle parameters to efficiently sterilize E. Coli and S. Aureus in planktonic samples without causing damage to the peripheral blood mesenchymal stem cells used as a model for surrounding tissue [3]. Plasma treatments of human periodontal ligament mesenchymal stem cells have led to a promotion of osteogenic differentiation without affecting cell viability [4]. These results can be important for dentistry, especially for possible support or alternative to conventional regenerative procedures, such as guided tissue regeneration, the use of bone replacement grafts, and application of exogenous growth factors or proteins. Besides the promising short term effects of atmospheric non-thermal plasma on cells, it is necessary to study the long term effects, like for example DNA damage in order to prevent undesirable effects.",
journal = "National Symposium on Plasma Science and Technology & International Conference on Plasma Science and Technology - PLASMA 2014 (29; 2014; Kotayyam, India)",
title = "Plasma Induced DNA Damage: Comparison with the Effects Of Ionizing Radiation And Establishing Effective Treatment Doses",
pages = "34",
url = "https://hdl.handle.net/21.15107/rcub_vinar_10653"
}
Lazović, S., Maletić, D., Leskovac, A., Filipović, J. G., Puač, N., Malović, G. N., Joksić, G.,& Petrović, Z. Lj.. (2014). Plasma Induced DNA Damage: Comparison with the Effects Of Ionizing Radiation And Establishing Effective Treatment Doses. in National Symposium on Plasma Science and Technology & International Conference on Plasma Science and Technology - PLASMA 2014 (29; 2014; Kotayyam, India), 34.
https://hdl.handle.net/21.15107/rcub_vinar_10653
Lazović S, Maletić D, Leskovac A, Filipović JG, Puač N, Malović GN, Joksić G, Petrović ZL. Plasma Induced DNA Damage: Comparison with the Effects Of Ionizing Radiation And Establishing Effective Treatment Doses. in National Symposium on Plasma Science and Technology & International Conference on Plasma Science and Technology - PLASMA 2014 (29; 2014; Kotayyam, India). 2014;:34.
https://hdl.handle.net/21.15107/rcub_vinar_10653 .
Lazović, Saša, Maletić, Dimitrije, Leskovac, Andreja, Filipović, Jelena G., Puač, N., Malović, Gordana N., Joksić, Gordana, Petrović, Z. Lj., "Plasma Induced DNA Damage: Comparison with the Effects Of Ionizing Radiation And Establishing Effective Treatment Doses" in National Symposium on Plasma Science and Technology & International Conference on Plasma Science and Technology - PLASMA 2014 (29; 2014; Kotayyam, India) (2014):34,
https://hdl.handle.net/21.15107/rcub_vinar_10653 .

Plasma induced DNA damage: Comparison with the effects of ionizing radiation

Lazovic, S.; Maletić, Dimitrije; Leskovac, Andreja; Filipović, Jelena G.; Puac, N.; Malović, Gordana N.; Joksić, Gordana; Petrović, Z. Lj.

(2014)

TY  - JOUR
AU  - Lazovic, S.
AU  - Maletić, Dimitrije
AU  - Leskovac, Andreja
AU  - Filipović, Jelena G.
AU  - Puac, N.
AU  - Malović, Gordana N.
AU  - Joksić, Gordana
AU  - Petrović, Z. Lj.
PY  - 2014
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/154
AB  - We use human primary fibroblasts for comparing plasma and gamma rays induced DNA damage. In both cases, DNA strand breaks occur, but of fundamentally different nature. Unlike gamma exposure, contact with plasma predominantly leads to single strand breaks and base-damages, while double strand breaks are mainly consequence of the cell repair mechanisms. Different cell signaling mechanisms are detected confirming this (ataxia telangiectasia mutated - ATM and ataxia telangiectasia and Rad3 related - ATR, respectively). The effective plasma doses can be tuned to match the typical therapeutic doses of 2Gy. Tailoring the effective dose through plasma power and duration of the treatment enables safety precautions mainly by inducing apoptosis and consequently reduced frequency of micronuclei. (C) 2014 AIP Publishing LLC.
T2  - Applied Physics Letters
T1  - Plasma induced DNA damage: Comparison with the effects of ionizing radiation
VL  - 105
IS  - 12
DO  - 10.1063/1.4896626
ER  - 
@article{
author = "Lazovic, S. and Maletić, Dimitrije and Leskovac, Andreja and Filipović, Jelena G. and Puac, N. and Malović, Gordana N. and Joksić, Gordana and Petrović, Z. Lj.",
year = "2014",
abstract = "We use human primary fibroblasts for comparing plasma and gamma rays induced DNA damage. In both cases, DNA strand breaks occur, but of fundamentally different nature. Unlike gamma exposure, contact with plasma predominantly leads to single strand breaks and base-damages, while double strand breaks are mainly consequence of the cell repair mechanisms. Different cell signaling mechanisms are detected confirming this (ataxia telangiectasia mutated - ATM and ataxia telangiectasia and Rad3 related - ATR, respectively). The effective plasma doses can be tuned to match the typical therapeutic doses of 2Gy. Tailoring the effective dose through plasma power and duration of the treatment enables safety precautions mainly by inducing apoptosis and consequently reduced frequency of micronuclei. (C) 2014 AIP Publishing LLC.",
journal = "Applied Physics Letters",
title = "Plasma induced DNA damage: Comparison with the effects of ionizing radiation",
volume = "105",
number = "12",
doi = "10.1063/1.4896626"
}
Lazovic, S., Maletić, D., Leskovac, A., Filipović, J. G., Puac, N., Malović, G. N., Joksić, G.,& Petrović, Z. Lj.. (2014). Plasma induced DNA damage: Comparison with the effects of ionizing radiation. in Applied Physics Letters, 105(12).
https://doi.org/10.1063/1.4896626
Lazovic S, Maletić D, Leskovac A, Filipović JG, Puac N, Malović GN, Joksić G, Petrović ZL. Plasma induced DNA damage: Comparison with the effects of ionizing radiation. in Applied Physics Letters. 2014;105(12).
doi:10.1063/1.4896626 .
Lazovic, S., Maletić, Dimitrije, Leskovac, Andreja, Filipović, Jelena G., Puac, N., Malović, Gordana N., Joksić, Gordana, Petrović, Z. Lj., "Plasma induced DNA damage: Comparison with the effects of ionizing radiation" in Applied Physics Letters, 105, no. 12 (2014),
https://doi.org/10.1063/1.4896626 . .
1
30
27
31

Fine synchronization of the CMS muon drift-tube local trigger using cosmic rays

Chatrchyan, S.; Adžić, Petar; Đorđević, Miloš; Jovanović, Dragana J.; Krpić, D.; Maletić, Dimitrije; Puzović, Jovan M.; Smiljković, Nikola; Milenović, Predrag

(2010)

TY  - JOUR
AU  - Chatrchyan, S.
AU  - Adžić, Petar
AU  - Đorđević, Miloš
AU  - Jovanović, Dragana J.
AU  - Krpić, D.
AU  - Maletić, Dimitrije
AU  - Puzović, Jovan M.
AU  - Smiljković, Nikola
AU  - Milenović, Predrag
PY  - 2010
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/4072
AB  - The CMS experiment uses self-triggering arrays of drift tubes in the barrel muon trigger to perform the identification of the correct bunch crossing. The identification is unique only if the trigger chain is correctly synchronized. In this paper, the synchronization performed during an extended cosmic ray run is described and the results are reported. The random arrival time of cosmic ray muons allowed several synchronization aspects to be studied and a simple method for the fine synchronization of the Drift Tube Local Trigger at LHC to be developed.
T2  - Journal of Instrumentation
T1  - Fine synchronization of the CMS muon drift-tube local trigger using cosmic rays
VL  - 5
DO  - 10.1088/1748-0221/5/03/T03004
ER  - 
@article{
author = "Chatrchyan, S. and Adžić, Petar and Đorđević, Miloš and Jovanović, Dragana J. and Krpić, D. and Maletić, Dimitrije and Puzović, Jovan M. and Smiljković, Nikola and Milenović, Predrag",
year = "2010",
abstract = "The CMS experiment uses self-triggering arrays of drift tubes in the barrel muon trigger to perform the identification of the correct bunch crossing. The identification is unique only if the trigger chain is correctly synchronized. In this paper, the synchronization performed during an extended cosmic ray run is described and the results are reported. The random arrival time of cosmic ray muons allowed several synchronization aspects to be studied and a simple method for the fine synchronization of the Drift Tube Local Trigger at LHC to be developed.",
journal = "Journal of Instrumentation",
title = "Fine synchronization of the CMS muon drift-tube local trigger using cosmic rays",
volume = "5",
doi = "10.1088/1748-0221/5/03/T03004"
}
Chatrchyan, S., Adžić, P., Đorđević, M., Jovanović, D. J., Krpić, D., Maletić, D., Puzović, J. M., Smiljković, N.,& Milenović, P.. (2010). Fine synchronization of the CMS muon drift-tube local trigger using cosmic rays. in Journal of Instrumentation, 5.
https://doi.org/10.1088/1748-0221/5/03/T03004
Chatrchyan S, Adžić P, Đorđević M, Jovanović DJ, Krpić D, Maletić D, Puzović JM, Smiljković N, Milenović P. Fine synchronization of the CMS muon drift-tube local trigger using cosmic rays. in Journal of Instrumentation. 2010;5.
doi:10.1088/1748-0221/5/03/T03004 .
Chatrchyan, S., Adžić, Petar, Đorđević, Miloš, Jovanović, Dragana J., Krpić, D., Maletić, Dimitrije, Puzović, Jovan M., Smiljković, Nikola, Milenović, Predrag, "Fine synchronization of the CMS muon drift-tube local trigger using cosmic rays" in Journal of Instrumentation, 5 (2010),
https://doi.org/10.1088/1748-0221/5/03/T03004 . .
1
11
32
36

Commissioning of the CMS High-Level Trigger with cosmic rays

Chatrchyan, S.; Adžić, Petar; Đorđević, Miloš; Jovanović, Dragana J.; Krpić, D.; Maletić, Dimitrije; Puzović, Jovan M.; Smiljković, Nikola; Milenović, Predrag

(2010)

TY  - JOUR
AU  - Chatrchyan, S.
AU  - Adžić, Petar
AU  - Đorđević, Miloš
AU  - Jovanović, Dragana J.
AU  - Krpić, D.
AU  - Maletić, Dimitrije
AU  - Puzović, Jovan M.
AU  - Smiljković, Nikola
AU  - Milenović, Predrag
PY  - 2010
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/4071
AB  - The CMS High-Level Trigger (HLT) is responsible for ensuring that data samples with potentially interesting events are recorded with high efficiency and good quality. This paper gives an overview of the HLT and focuses on its commissioning using cosmic rays. The selection of triggers that were deployed is presented and the online grouping of triggered events into streams and primary datasets is discussed. Tools for online and offline data quality monitoring for the HLT are described, and the operational performance of the muon HLT algorithms is reviewed. The average time taken for the HLT selection and its dependence on detector and operating conditions are presented. The HLT performed reliably and helped provide a large dataset. This dataset has proven to be invaluable for understanding the performance of the trigger and the CMS experiment as a whole.
T2  - Journal of Instrumentation
T1  - Commissioning of the CMS High-Level Trigger with cosmic rays
VL  - 5
DO  - 10.1088/1748-0221/5/03/T03005
ER  - 
@article{
author = "Chatrchyan, S. and Adžić, Petar and Đorđević, Miloš and Jovanović, Dragana J. and Krpić, D. and Maletić, Dimitrije and Puzović, Jovan M. and Smiljković, Nikola and Milenović, Predrag",
year = "2010",
abstract = "The CMS High-Level Trigger (HLT) is responsible for ensuring that data samples with potentially interesting events are recorded with high efficiency and good quality. This paper gives an overview of the HLT and focuses on its commissioning using cosmic rays. The selection of triggers that were deployed is presented and the online grouping of triggered events into streams and primary datasets is discussed. Tools for online and offline data quality monitoring for the HLT are described, and the operational performance of the muon HLT algorithms is reviewed. The average time taken for the HLT selection and its dependence on detector and operating conditions are presented. The HLT performed reliably and helped provide a large dataset. This dataset has proven to be invaluable for understanding the performance of the trigger and the CMS experiment as a whole.",
journal = "Journal of Instrumentation",
title = "Commissioning of the CMS High-Level Trigger with cosmic rays",
volume = "5",
doi = "10.1088/1748-0221/5/03/T03005"
}
Chatrchyan, S., Adžić, P., Đorđević, M., Jovanović, D. J., Krpić, D., Maletić, D., Puzović, J. M., Smiljković, N.,& Milenović, P.. (2010). Commissioning of the CMS High-Level Trigger with cosmic rays. in Journal of Instrumentation, 5.
https://doi.org/10.1088/1748-0221/5/03/T03005
Chatrchyan S, Adžić P, Đorđević M, Jovanović DJ, Krpić D, Maletić D, Puzović JM, Smiljković N, Milenović P. Commissioning of the CMS High-Level Trigger with cosmic rays. in Journal of Instrumentation. 2010;5.
doi:10.1088/1748-0221/5/03/T03005 .
Chatrchyan, S., Adžić, Petar, Đorđević, Miloš, Jovanović, Dragana J., Krpić, D., Maletić, Dimitrije, Puzović, Jovan M., Smiljković, Nikola, Milenović, Predrag, "Commissioning of the CMS High-Level Trigger with cosmic rays" in Journal of Instrumentation, 5 (2010),
https://doi.org/10.1088/1748-0221/5/03/T03005 . .
1
16
35
43

Commissioning and performance of the CMS silicon strip tracker with cosmic ray muons

Chatrchyan, S.; Adžić, Petar; Đorđević, Miloš; Jovanović, Dragana J.; Krpić, D.; Maletić, Dimitrije; Puzović, Jovan M.; Smiljković, Nikola; Milenović, Predrag

(2010)

TY  - JOUR
AU  - Chatrchyan, S.
AU  - Adžić, Petar
AU  - Đorđević, Miloš
AU  - Jovanović, Dragana J.
AU  - Krpić, D.
AU  - Maletić, Dimitrije
AU  - Puzović, Jovan M.
AU  - Smiljković, Nikola
AU  - Milenović, Predrag
PY  - 2010
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/4070
AB  - During autumn 2008, the Silicon Strip Tracker was operated with the full CMS experiment in a comprehensive test, in the presence of the 3.8 T magnetic field produced by the CMS superconducting solenoid. Cosmic ray muons were detected in the muon chambers and used to trigger the readout of all CMS sub-detectors. About 15 million events with a muon in the tracker were collected. The efficiency of hit and track reconstruction were measured to be higher than 99% and consistent with expectations from Monte Carlo simulation. This article details the commissioning and performance of the Silicon Strip Tracker with cosmic ray muons.
T2  - Journal of Instrumentation
T1  - Commissioning and performance of the CMS silicon strip tracker with cosmic ray muons
VL  - 5
DO  - 10.1088/1748-0221/5/03/T03008
ER  - 
@article{
author = "Chatrchyan, S. and Adžić, Petar and Đorđević, Miloš and Jovanović, Dragana J. and Krpić, D. and Maletić, Dimitrije and Puzović, Jovan M. and Smiljković, Nikola and Milenović, Predrag",
year = "2010",
abstract = "During autumn 2008, the Silicon Strip Tracker was operated with the full CMS experiment in a comprehensive test, in the presence of the 3.8 T magnetic field produced by the CMS superconducting solenoid. Cosmic ray muons were detected in the muon chambers and used to trigger the readout of all CMS sub-detectors. About 15 million events with a muon in the tracker were collected. The efficiency of hit and track reconstruction were measured to be higher than 99% and consistent with expectations from Monte Carlo simulation. This article details the commissioning and performance of the Silicon Strip Tracker with cosmic ray muons.",
journal = "Journal of Instrumentation",
title = "Commissioning and performance of the CMS silicon strip tracker with cosmic ray muons",
volume = "5",
doi = "10.1088/1748-0221/5/03/T03008"
}
Chatrchyan, S., Adžić, P., Đorđević, M., Jovanović, D. J., Krpić, D., Maletić, D., Puzović, J. M., Smiljković, N.,& Milenović, P.. (2010). Commissioning and performance of the CMS silicon strip tracker with cosmic ray muons. in Journal of Instrumentation, 5.
https://doi.org/10.1088/1748-0221/5/03/T03008
Chatrchyan S, Adžić P, Đorđević M, Jovanović DJ, Krpić D, Maletić D, Puzović JM, Smiljković N, Milenović P. Commissioning and performance of the CMS silicon strip tracker with cosmic ray muons. in Journal of Instrumentation. 2010;5.
doi:10.1088/1748-0221/5/03/T03008 .
Chatrchyan, S., Adžić, Petar, Đorđević, Miloš, Jovanović, Dragana J., Krpić, D., Maletić, Dimitrije, Puzović, Jovan M., Smiljković, Nikola, Milenović, Predrag, "Commissioning and performance of the CMS silicon strip tracker with cosmic ray muons" in Journal of Instrumentation, 5 (2010),
https://doi.org/10.1088/1748-0221/5/03/T03008 . .
32
57
44

Alignment of the CMS silicon tracker during commissioning with cosmic rays

Chatrchyan, S.; Adžić, Petar; Đorđević, Miloš; Jovanović, Dragana J.; Krpić, D.; Maletić, Dimitrije; Puzović, Jovan M.; Smiljković, Nikola; Milenović, Predrag

(2010)

TY  - JOUR
AU  - Chatrchyan, S.
AU  - Adžić, Petar
AU  - Đorđević, Miloš
AU  - Jovanović, Dragana J.
AU  - Krpić, D.
AU  - Maletić, Dimitrije
AU  - Puzović, Jovan M.
AU  - Smiljković, Nikola
AU  - Milenović, Predrag
PY  - 2010
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/4069
AB  - The CMS silicon tracker, consisting of 1440 silicon pixel and 15 148 silicon strip detector modules, has been aligned using more than three million cosmic ray charged particles, with additional information from optical surveys. The positions of the modules were determined with respect to cosmic ray trajectories to an average precision of 3-4 microns RMS in the barrel and 3-14 microns RMS in the endcap in the most sensitive coordinate. The results have been validated by several studies, including laser beam cross-checks, track fit self-consistency, track residuals in overlapping module regions, and track parameter resolution, and are compared with predictions obtained from simulation. Correlated systematic effects have been investigated. The track parameter resolutions obtained with this alignment are close to the design performance.
T2  - Journal of Instrumentation
T1  - Alignment of the CMS silicon tracker during commissioning with cosmic rays
VL  - 5
DO  - 10.1088/1748-0221/5/03/T03009
ER  - 
@article{
author = "Chatrchyan, S. and Adžić, Petar and Đorđević, Miloš and Jovanović, Dragana J. and Krpić, D. and Maletić, Dimitrije and Puzović, Jovan M. and Smiljković, Nikola and Milenović, Predrag",
year = "2010",
abstract = "The CMS silicon tracker, consisting of 1440 silicon pixel and 15 148 silicon strip detector modules, has been aligned using more than three million cosmic ray charged particles, with additional information from optical surveys. The positions of the modules were determined with respect to cosmic ray trajectories to an average precision of 3-4 microns RMS in the barrel and 3-14 microns RMS in the endcap in the most sensitive coordinate. The results have been validated by several studies, including laser beam cross-checks, track fit self-consistency, track residuals in overlapping module regions, and track parameter resolution, and are compared with predictions obtained from simulation. Correlated systematic effects have been investigated. The track parameter resolutions obtained with this alignment are close to the design performance.",
journal = "Journal of Instrumentation",
title = "Alignment of the CMS silicon tracker during commissioning with cosmic rays",
volume = "5",
doi = "10.1088/1748-0221/5/03/T03009"
}
Chatrchyan, S., Adžić, P., Đorđević, M., Jovanović, D. J., Krpić, D., Maletić, D., Puzović, J. M., Smiljković, N.,& Milenović, P.. (2010). Alignment of the CMS silicon tracker during commissioning with cosmic rays. in Journal of Instrumentation, 5.
https://doi.org/10.1088/1748-0221/5/03/T03009
Chatrchyan S, Adžić P, Đorđević M, Jovanović DJ, Krpić D, Maletić D, Puzović JM, Smiljković N, Milenović P. Alignment of the CMS silicon tracker during commissioning with cosmic rays. in Journal of Instrumentation. 2010;5.
doi:10.1088/1748-0221/5/03/T03009 .
Chatrchyan, S., Adžić, Petar, Đorđević, Miloš, Jovanović, Dragana J., Krpić, D., Maletić, Dimitrije, Puzović, Jovan M., Smiljković, Nikola, Milenović, Predrag, "Alignment of the CMS silicon tracker during commissioning with cosmic rays" in Journal of Instrumentation, 5 (2010),
https://doi.org/10.1088/1748-0221/5/03/T03009 . .
12
66
87
86

Performance and operation of the CMS electromagnetic calorimeter

Chatrchyan, S.; Adžić, Petar; Đorđević, Miloš; Jovanović, Dragana J.; Krpić, D.; Maletić, Dimitrije; Puzović, Jovan M.; Smiljković, Nikola; Milenović, Predrag

(2010)

TY  - JOUR
AU  - Chatrchyan, S.
AU  - Adžić, Petar
AU  - Đorđević, Miloš
AU  - Jovanović, Dragana J.
AU  - Krpić, D.
AU  - Maletić, Dimitrije
AU  - Puzović, Jovan M.
AU  - Smiljković, Nikola
AU  - Milenović, Predrag
PY  - 2010
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/4068
AB  - The operation and general performance of the CMS electromagnetic calorimeter using cosmic-ray muons are described. These muons were recorded after the closure of the CMS detector in late 2008. The calorimeter is made of lead tungstate crystals and the overall status of the 75 848 channels corresponding to the barrel and endcap detectors is reported. The stability of crucial operational parameters, such as high voltage, temperature and electronic noise, is summarised and the performance of the light monitoring system is presented.
T2  - Journal of Instrumentation
T1  - Performance and operation of the CMS electromagnetic calorimeter
VL  - 5
DO  - 10.1088/1748-0221/5/03/T03010
ER  - 
@article{
author = "Chatrchyan, S. and Adžić, Petar and Đorđević, Miloš and Jovanović, Dragana J. and Krpić, D. and Maletić, Dimitrije and Puzović, Jovan M. and Smiljković, Nikola and Milenović, Predrag",
year = "2010",
abstract = "The operation and general performance of the CMS electromagnetic calorimeter using cosmic-ray muons are described. These muons were recorded after the closure of the CMS detector in late 2008. The calorimeter is made of lead tungstate crystals and the overall status of the 75 848 channels corresponding to the barrel and endcap detectors is reported. The stability of crucial operational parameters, such as high voltage, temperature and electronic noise, is summarised and the performance of the light monitoring system is presented.",
journal = "Journal of Instrumentation",
title = "Performance and operation of the CMS electromagnetic calorimeter",
volume = "5",
doi = "10.1088/1748-0221/5/03/T03010"
}
Chatrchyan, S., Adžić, P., Đorđević, M., Jovanović, D. J., Krpić, D., Maletić, D., Puzović, J. M., Smiljković, N.,& Milenović, P.. (2010). Performance and operation of the CMS electromagnetic calorimeter. in Journal of Instrumentation, 5.
https://doi.org/10.1088/1748-0221/5/03/T03010
Chatrchyan S, Adžić P, Đorđević M, Jovanović DJ, Krpić D, Maletić D, Puzović JM, Smiljković N, Milenović P. Performance and operation of the CMS electromagnetic calorimeter. in Journal of Instrumentation. 2010;5.
doi:10.1088/1748-0221/5/03/T03010 .
Chatrchyan, S., Adžić, Petar, Đorđević, Miloš, Jovanović, Dragana J., Krpić, D., Maletić, Dimitrije, Puzović, Jovan M., Smiljković, Nikola, Milenović, Predrag, "Performance and operation of the CMS electromagnetic calorimeter" in Journal of Instrumentation, 5 (2010),
https://doi.org/10.1088/1748-0221/5/03/T03010 . .
1
60
43
87

Performance study of the CMS barrel resistive plate chambers with cosmic rays

Chatrchyan, S.; Adžić, Petar; Đorđević, Miloš; Jovanović, Dragana J.; Krpić, D.; Maletić, Dimitrije; Puzović, Jovan M.; Smiljković, Nikola; Milenović, Predrag

(2010)

TY  - JOUR
AU  - Chatrchyan, S.
AU  - Adžić, Petar
AU  - Đorđević, Miloš
AU  - Jovanović, Dragana J.
AU  - Krpić, D.
AU  - Maletić, Dimitrije
AU  - Puzović, Jovan M.
AU  - Smiljković, Nikola
AU  - Milenović, Predrag
PY  - 2010
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/4067
AB  - In October and November 2008, the CMS collaboration conducted a programme of cosmic ray data taking, which has recorded about 270 million events. The Resistive Plate Chamber system, which is part of the CMS muon detection system, was successfully operated in the full barrel. More than 98% of the channels were operational during the exercise with typical detection efficiency of 90%. In this paper, the performance of the detector during these dedicated runs is reported.
T2  - Journal of Instrumentation
T1  - Performance study of the CMS barrel resistive plate chambers with cosmic rays
VL  - 5
DO  - 10.1088/1748-0221/5/03/T03017
ER  - 
@article{
author = "Chatrchyan, S. and Adžić, Petar and Đorđević, Miloš and Jovanović, Dragana J. and Krpić, D. and Maletić, Dimitrije and Puzović, Jovan M. and Smiljković, Nikola and Milenović, Predrag",
year = "2010",
abstract = "In October and November 2008, the CMS collaboration conducted a programme of cosmic ray data taking, which has recorded about 270 million events. The Resistive Plate Chamber system, which is part of the CMS muon detection system, was successfully operated in the full barrel. More than 98% of the channels were operational during the exercise with typical detection efficiency of 90%. In this paper, the performance of the detector during these dedicated runs is reported.",
journal = "Journal of Instrumentation",
title = "Performance study of the CMS barrel resistive plate chambers with cosmic rays",
volume = "5",
doi = "10.1088/1748-0221/5/03/T03017"
}
Chatrchyan, S., Adžić, P., Đorđević, M., Jovanović, D. J., Krpić, D., Maletić, D., Puzović, J. M., Smiljković, N.,& Milenović, P.. (2010). Performance study of the CMS barrel resistive plate chambers with cosmic rays. in Journal of Instrumentation, 5.
https://doi.org/10.1088/1748-0221/5/03/T03017
Chatrchyan S, Adžić P, Đorđević M, Jovanović DJ, Krpić D, Maletić D, Puzović JM, Smiljković N, Milenović P. Performance study of the CMS barrel resistive plate chambers with cosmic rays. in Journal of Instrumentation. 2010;5.
doi:10.1088/1748-0221/5/03/T03017 .
Chatrchyan, S., Adžić, Petar, Đorđević, Miloš, Jovanović, Dragana J., Krpić, D., Maletić, Dimitrije, Puzović, Jovan M., Smiljković, Nikola, Milenović, Predrag, "Performance study of the CMS barrel resistive plate chambers with cosmic rays" in Journal of Instrumentation, 5 (2010),
https://doi.org/10.1088/1748-0221/5/03/T03017 . .
1
25
34
53

Performance of the CMS cathode strip chambers with cosmic rays

Chatrchyan, S.; Adžić, Petar; Đorđević, Miloš; Jovanović, Dragana J.; Krpić, D.; Maletić, Dimitrije; Puzović, Jovan M.; Smiljković, Nikola; Milenović, Predrag

(2010)

TY  - JOUR
AU  - Chatrchyan, S.
AU  - Adžić, Petar
AU  - Đorđević, Miloš
AU  - Jovanović, Dragana J.
AU  - Krpić, D.
AU  - Maletić, Dimitrije
AU  - Puzović, Jovan M.
AU  - Smiljković, Nikola
AU  - Milenović, Predrag
PY  - 2010
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/4066
AB  - The Cathode Strip Chambers (CSCs) constitute the primary muon tracking device in the CMS endcaps. Their performance has been evaluated using data taken during a cosmic ray run in fall 2008. Measured noise levels are low, with the number of noisy channels well below 1%. Coordinate resolution was measured for all types of chambers, and fall in the range 47 mu m to 243 mu m. The efficiencies for local charged track triggers, for hit and for segments reconstruction were measured, and are above 99%. The timing resolution per layer is approximately 5 ns.
T2  - Journal of Instrumentation
T1  - Performance of the CMS cathode strip chambers with cosmic rays
VL  - 5
DO  - 10.1088/1748-0221/5/03/T03018
ER  - 
@article{
author = "Chatrchyan, S. and Adžić, Petar and Đorđević, Miloš and Jovanović, Dragana J. and Krpić, D. and Maletić, Dimitrije and Puzović, Jovan M. and Smiljković, Nikola and Milenović, Predrag",
year = "2010",
abstract = "The Cathode Strip Chambers (CSCs) constitute the primary muon tracking device in the CMS endcaps. Their performance has been evaluated using data taken during a cosmic ray run in fall 2008. Measured noise levels are low, with the number of noisy channels well below 1%. Coordinate resolution was measured for all types of chambers, and fall in the range 47 mu m to 243 mu m. The efficiencies for local charged track triggers, for hit and for segments reconstruction were measured, and are above 99%. The timing resolution per layer is approximately 5 ns.",
journal = "Journal of Instrumentation",
title = "Performance of the CMS cathode strip chambers with cosmic rays",
volume = "5",
doi = "10.1088/1748-0221/5/03/T03018"
}
Chatrchyan, S., Adžić, P., Đorđević, M., Jovanović, D. J., Krpić, D., Maletić, D., Puzović, J. M., Smiljković, N.,& Milenović, P.. (2010). Performance of the CMS cathode strip chambers with cosmic rays. in Journal of Instrumentation, 5.
https://doi.org/10.1088/1748-0221/5/03/T03018
Chatrchyan S, Adžić P, Đorđević M, Jovanović DJ, Krpić D, Maletić D, Puzović JM, Smiljković N, Milenović P. Performance of the CMS cathode strip chambers with cosmic rays. in Journal of Instrumentation. 2010;5.
doi:10.1088/1748-0221/5/03/T03018 .
Chatrchyan, S., Adžić, Petar, Đorđević, Miloš, Jovanović, Dragana J., Krpić, D., Maletić, Dimitrije, Puzović, Jovan M., Smiljković, Nikola, Milenović, Predrag, "Performance of the CMS cathode strip chambers with cosmic rays" in Journal of Instrumentation, 5 (2010),
https://doi.org/10.1088/1748-0221/5/03/T03018 . .
1
15
33
35

Aligning the CMS muon chambers with the muon alignment system during an extended cosmic ray run

Chatrchyan, S.; Adžić, Petar; Đorđević, Miloš; Jovanović, Dragana J.; Krpić, D.; Maletić, Dimitrije; Puzović, Jovan M.; Smiljković, Nikola; Milenović, Predrag

(2010)

TY  - JOUR
AU  - Chatrchyan, S.
AU  - Adžić, Petar
AU  - Đorđević, Miloš
AU  - Jovanović, Dragana J.
AU  - Krpić, D.
AU  - Maletić, Dimitrije
AU  - Puzović, Jovan M.
AU  - Smiljković, Nikola
AU  - Milenović, Predrag
PY  - 2010
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/4065
AB  - The alignment system for the muon spectrometer of the CMS detector comprises three independent subsystems of optical and analog position sensors. It aligns muon chambers with respect to each other and to the central silicon tracker. System commissioning at full magnetic field began in 2008 during an extended cosmic ray run. The system succeeded in tracking muon detector movements of up to 18 mm and rotations of several milliradians under magnetic forces. Depending on coordinate and subsystem, the system achieved chamber alignment precisions of 140-350 mu m and 30-200 mu rad, close to the precision requirements of the experiment. Systematic errors on absolute positions are estimated to be 340-590 mu m based on comparisons with independent photogrammetry measurements.
T2  - Journal of Instrumentation
T1  - Aligning the CMS muon chambers with the muon alignment system during an extended cosmic ray run
VL  - 5
DO  - 10.1088/1748-0221/5/03/T03019
ER  - 
@article{
author = "Chatrchyan, S. and Adžić, Petar and Đorđević, Miloš and Jovanović, Dragana J. and Krpić, D. and Maletić, Dimitrije and Puzović, Jovan M. and Smiljković, Nikola and Milenović, Predrag",
year = "2010",
abstract = "The alignment system for the muon spectrometer of the CMS detector comprises three independent subsystems of optical and analog position sensors. It aligns muon chambers with respect to each other and to the central silicon tracker. System commissioning at full magnetic field began in 2008 during an extended cosmic ray run. The system succeeded in tracking muon detector movements of up to 18 mm and rotations of several milliradians under magnetic forces. Depending on coordinate and subsystem, the system achieved chamber alignment precisions of 140-350 mu m and 30-200 mu rad, close to the precision requirements of the experiment. Systematic errors on absolute positions are estimated to be 340-590 mu m based on comparisons with independent photogrammetry measurements.",
journal = "Journal of Instrumentation",
title = "Aligning the CMS muon chambers with the muon alignment system during an extended cosmic ray run",
volume = "5",
doi = "10.1088/1748-0221/5/03/T03019"
}
Chatrchyan, S., Adžić, P., Đorđević, M., Jovanović, D. J., Krpić, D., Maletić, D., Puzović, J. M., Smiljković, N.,& Milenović, P.. (2010). Aligning the CMS muon chambers with the muon alignment system during an extended cosmic ray run. in Journal of Instrumentation, 5.
https://doi.org/10.1088/1748-0221/5/03/T03019
Chatrchyan S, Adžić P, Đorđević M, Jovanović DJ, Krpić D, Maletić D, Puzović JM, Smiljković N, Milenović P. Aligning the CMS muon chambers with the muon alignment system during an extended cosmic ray run. in Journal of Instrumentation. 2010;5.
doi:10.1088/1748-0221/5/03/T03019 .
Chatrchyan, S., Adžić, Petar, Đorđević, Miloš, Jovanović, Dragana J., Krpić, D., Maletić, Dimitrije, Puzović, Jovan M., Smiljković, Nikola, Milenović, Predrag, "Aligning the CMS muon chambers with the muon alignment system during an extended cosmic ray run" in Journal of Instrumentation, 5 (2010),
https://doi.org/10.1088/1748-0221/5/03/T03019 . .
9
16
33
44

Alignment of the CMS muon system with cosmic-ray and beam-halo muons

Chatrchyan, S.; Adžić, Petar; Đorđević, Miloš; Jovanović, Dragana J.; Krpić, D.; Maletić, Dimitrije; Puzović, Jovan M.; Smiljković, Nikola; Milenović, Predrag

(2010)

TY  - JOUR
AU  - Chatrchyan, S.
AU  - Adžić, Petar
AU  - Đorđević, Miloš
AU  - Jovanović, Dragana J.
AU  - Krpić, D.
AU  - Maletić, Dimitrije
AU  - Puzović, Jovan M.
AU  - Smiljković, Nikola
AU  - Milenović, Predrag
PY  - 2010
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/4064
AB  - The CMS muon system has been aligned using cosmic-ray muons collected in 2008 and beam-halo muons from the 2008 LHC circulating beam tests. After alignment, the resolution of the most sensitive coordinate is 80 microns for the relative positions of superlayers in the same barrel chamber and 270 microns for the relative positions of endcap chambers in the same ring structure. The resolution on the position of the central barrel chambers relative to the tracker is comprised between two extreme estimates, 200 and 700 microns, provided by two complementary studies. With minor modifications, the alignment procedures can be applied using muons from LHC collisions, leading to additional significant improvements.
T2  - Journal of Instrumentation
T1  - Alignment of the CMS muon system with cosmic-ray and beam-halo muons
VL  - 5
DO  - 10.1088/1748-0221/5/03/T03020
ER  - 
@article{
author = "Chatrchyan, S. and Adžić, Petar and Đorđević, Miloš and Jovanović, Dragana J. and Krpić, D. and Maletić, Dimitrije and Puzović, Jovan M. and Smiljković, Nikola and Milenović, Predrag",
year = "2010",
abstract = "The CMS muon system has been aligned using cosmic-ray muons collected in 2008 and beam-halo muons from the 2008 LHC circulating beam tests. After alignment, the resolution of the most sensitive coordinate is 80 microns for the relative positions of superlayers in the same barrel chamber and 270 microns for the relative positions of endcap chambers in the same ring structure. The resolution on the position of the central barrel chambers relative to the tracker is comprised between two extreme estimates, 200 and 700 microns, provided by two complementary studies. With minor modifications, the alignment procedures can be applied using muons from LHC collisions, leading to additional significant improvements.",
journal = "Journal of Instrumentation",
title = "Alignment of the CMS muon system with cosmic-ray and beam-halo muons",
volume = "5",
doi = "10.1088/1748-0221/5/03/T03020"
}
Chatrchyan, S., Adžić, P., Đorđević, M., Jovanović, D. J., Krpić, D., Maletić, D., Puzović, J. M., Smiljković, N.,& Milenović, P.. (2010). Alignment of the CMS muon system with cosmic-ray and beam-halo muons. in Journal of Instrumentation, 5.
https://doi.org/10.1088/1748-0221/5/03/T03020
Chatrchyan S, Adžić P, Đorđević M, Jovanović DJ, Krpić D, Maletić D, Puzović JM, Smiljković N, Milenović P. Alignment of the CMS muon system with cosmic-ray and beam-halo muons. in Journal of Instrumentation. 2010;5.
doi:10.1088/1748-0221/5/03/T03020 .
Chatrchyan, S., Adžić, Petar, Đorđević, Miloš, Jovanović, Dragana J., Krpić, D., Maletić, Dimitrije, Puzović, Jovan M., Smiljković, Nikola, Milenović, Predrag, "Alignment of the CMS muon system with cosmic-ray and beam-halo muons" in Journal of Instrumentation, 5 (2010),
https://doi.org/10.1088/1748-0221/5/03/T03020 . .
10
24
35
53

Precise mapping of the magnetic field in the CMS barrel yoke using cosmic rays

Chatrchyan, S.; Adžić, Petar; Đorđević, Miloš; Jovanović, Dragana J.; Krpić, D.; Maletić, Dimitrije; Puzović, Jovan M.; Smiljković, Nikola; Milenović, Predrag

(2010)

TY  - JOUR
AU  - Chatrchyan, S.
AU  - Adžić, Petar
AU  - Đorđević, Miloš
AU  - Jovanović, Dragana J.
AU  - Krpić, D.
AU  - Maletić, Dimitrije
AU  - Puzović, Jovan M.
AU  - Smiljković, Nikola
AU  - Milenović, Predrag
PY  - 2010
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/4063
AB  - The CMS detector is designed around a large 4 T superconducting solenoid, enclosed in a 12 000-tonne steel return yoke. A detailed map of the magnetic field is required for the accurate simulation and reconstruction of physics events in the CMS detector, not only in the inner tracking region inside the solenoid but also in the large and complex structure of the steel yoke, which is instrumented with muon chambers. Using a large sample of cosmic muon events collected by CMS in 2008, the field in the steel of the barrel yoke has been determined with a precision of 3 to 8% depending on the location.
T2  - Journal of Instrumentation
T1  - Precise mapping of the magnetic field in the CMS barrel yoke using cosmic rays
VL  - 5
DO  - 10.1088/1748-0221/5/03/T03021
ER  - 
@article{
author = "Chatrchyan, S. and Adžić, Petar and Đorđević, Miloš and Jovanović, Dragana J. and Krpić, D. and Maletić, Dimitrije and Puzović, Jovan M. and Smiljković, Nikola and Milenović, Predrag",
year = "2010",
abstract = "The CMS detector is designed around a large 4 T superconducting solenoid, enclosed in a 12 000-tonne steel return yoke. A detailed map of the magnetic field is required for the accurate simulation and reconstruction of physics events in the CMS detector, not only in the inner tracking region inside the solenoid but also in the large and complex structure of the steel yoke, which is instrumented with muon chambers. Using a large sample of cosmic muon events collected by CMS in 2008, the field in the steel of the barrel yoke has been determined with a precision of 3 to 8% depending on the location.",
journal = "Journal of Instrumentation",
title = "Precise mapping of the magnetic field in the CMS barrel yoke using cosmic rays",
volume = "5",
doi = "10.1088/1748-0221/5/03/T03021"
}
Chatrchyan, S., Adžić, P., Đorđević, M., Jovanović, D. J., Krpić, D., Maletić, D., Puzović, J. M., Smiljković, N.,& Milenović, P.. (2010). Precise mapping of the magnetic field in the CMS barrel yoke using cosmic rays. in Journal of Instrumentation, 5.
https://doi.org/10.1088/1748-0221/5/03/T03021
Chatrchyan S, Adžić P, Đorđević M, Jovanović DJ, Krpić D, Maletić D, Puzović JM, Smiljković N, Milenović P. Precise mapping of the magnetic field in the CMS barrel yoke using cosmic rays. in Journal of Instrumentation. 2010;5.
doi:10.1088/1748-0221/5/03/T03021 .
Chatrchyan, S., Adžić, Petar, Đorđević, Miloš, Jovanović, Dragana J., Krpić, D., Maletić, Dimitrije, Puzović, Jovan M., Smiljković, Nikola, Milenović, Predrag, "Precise mapping of the magnetic field in the CMS barrel yoke using cosmic rays" in Journal of Instrumentation, 5 (2010),
https://doi.org/10.1088/1748-0221/5/03/T03021 . .
2
38
52
52

Performance of CMS muon reconstruction in cosmic-ray events

Chatrchyan, S.; Adžić, Petar; Đorđević, Miloš; Jovanović, Dragana J.; Krpić, D.; Maletić, Dimitrije; Puzović, Jovan M.; Smiljković, Nikola; Milenović, Predrag

(2010)

TY  - JOUR
AU  - Chatrchyan, S.
AU  - Adžić, Petar
AU  - Đorđević, Miloš
AU  - Jovanović, Dragana J.
AU  - Krpić, D.
AU  - Maletić, Dimitrije
AU  - Puzović, Jovan M.
AU  - Smiljković, Nikola
AU  - Milenović, Predrag
PY  - 2010
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/4062
AB  - The performance of muon reconstruction in CMS is evaluated using a large data sample of cosmic-ray muons recorded in 2008. Efficiencies of various high-level trigger, identification, and reconstruction algorithms have been measured for a broad range of muon momenta, and were found to be in good agreement with expectations from Monte Carlo simulation. The relative momentum resolution for muons crossing the barrel part of the detector is better than 1% at 10 GeV/c and is about 8% at 500 GeV/c, the latter being only a factor of two worse than expected with ideal alignment conditions. Muon charge misassignment ranges from less than 0.01% at 10 GeV/c to about 1% at 500 GeV/c.
T2  - Journal of Instrumentation
T1  - Performance of CMS muon reconstruction in cosmic-ray events
VL  - 5
DO  - 10.1088/1748-0221/5/03/T03022
ER  - 
@article{
author = "Chatrchyan, S. and Adžić, Petar and Đorđević, Miloš and Jovanović, Dragana J. and Krpić, D. and Maletić, Dimitrije and Puzović, Jovan M. and Smiljković, Nikola and Milenović, Predrag",
year = "2010",
abstract = "The performance of muon reconstruction in CMS is evaluated using a large data sample of cosmic-ray muons recorded in 2008. Efficiencies of various high-level trigger, identification, and reconstruction algorithms have been measured for a broad range of muon momenta, and were found to be in good agreement with expectations from Monte Carlo simulation. The relative momentum resolution for muons crossing the barrel part of the detector is better than 1% at 10 GeV/c and is about 8% at 500 GeV/c, the latter being only a factor of two worse than expected with ideal alignment conditions. Muon charge misassignment ranges from less than 0.01% at 10 GeV/c to about 1% at 500 GeV/c.",
journal = "Journal of Instrumentation",
title = "Performance of CMS muon reconstruction in cosmic-ray events",
volume = "5",
doi = "10.1088/1748-0221/5/03/T03022"
}
Chatrchyan, S., Adžić, P., Đorđević, M., Jovanović, D. J., Krpić, D., Maletić, D., Puzović, J. M., Smiljković, N.,& Milenović, P.. (2010). Performance of CMS muon reconstruction in cosmic-ray events. in Journal of Instrumentation, 5.
https://doi.org/10.1088/1748-0221/5/03/T03022
Chatrchyan S, Adžić P, Đorđević M, Jovanović DJ, Krpić D, Maletić D, Puzović JM, Smiljković N, Milenović P. Performance of CMS muon reconstruction in cosmic-ray events. in Journal of Instrumentation. 2010;5.
doi:10.1088/1748-0221/5/03/T03022 .
Chatrchyan, S., Adžić, Petar, Đorđević, Miloš, Jovanović, Dragana J., Krpić, D., Maletić, Dimitrije, Puzović, Jovan M., Smiljković, Nikola, Milenović, Predrag, "Performance of CMS muon reconstruction in cosmic-ray events" in Journal of Instrumentation, 5 (2010),
https://doi.org/10.1088/1748-0221/5/03/T03022 . .
2
58
79
77

Radiation hardness qualification of PbWO4 scintillation crystals for the CMS Electromagnetic Calorimeter

Adžić, Petar; Aničin, Ivan V.; Đorđević, Miloš; Drndarevic, S.; Jovanović, Dragana J.; Krpić, D.; Maletić, Dimitrije; Milenović, Predrag; Puzović, Jovan M.

(2010)

TY  - JOUR
AU  - Adžić, Petar
AU  - Aničin, Ivan V.
AU  - Đorđević, Miloš
AU  - Drndarevic, S.
AU  - Jovanović, Dragana J.
AU  - Krpić, D.
AU  - Maletić, Dimitrije
AU  - Milenović, Predrag
AU  - Puzović, Jovan M.
PY  - 2010
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/4061
AB  - Ensuring the radiation hardness of PbWO4 crystals was one of the main priorities during the construction of the electromagnetic calorimeter of the CMS experiment at CERN. The production on an industrial scale of radiation hard crystals and their certification over a period of several years represented a difficult challenge both for CMS and for the crystal suppliers. The present article reviews the related scientific and technological problems encountered.
T2  - Journal of Instrumentation
T1  - Radiation hardness qualification of PbWO4 scintillation crystals for the CMS Electromagnetic Calorimeter
VL  - 5
DO  - 10.1088/1748-0221/5/03/P03010
ER  - 
@article{
author = "Adžić, Petar and Aničin, Ivan V. and Đorđević, Miloš and Drndarevic, S. and Jovanović, Dragana J. and Krpić, D. and Maletić, Dimitrije and Milenović, Predrag and Puzović, Jovan M.",
year = "2010",
abstract = "Ensuring the radiation hardness of PbWO4 crystals was one of the main priorities during the construction of the electromagnetic calorimeter of the CMS experiment at CERN. The production on an industrial scale of radiation hard crystals and their certification over a period of several years represented a difficult challenge both for CMS and for the crystal suppliers. The present article reviews the related scientific and technological problems encountered.",
journal = "Journal of Instrumentation",
title = "Radiation hardness qualification of PbWO4 scintillation crystals for the CMS Electromagnetic Calorimeter",
volume = "5",
doi = "10.1088/1748-0221/5/03/P03010"
}
Adžić, P., Aničin, I. V., Đorđević, M., Drndarevic, S., Jovanović, D. J., Krpić, D., Maletić, D., Milenović, P.,& Puzović, J. M.. (2010). Radiation hardness qualification of PbWO4 scintillation crystals for the CMS Electromagnetic Calorimeter. in Journal of Instrumentation, 5.
https://doi.org/10.1088/1748-0221/5/03/P03010
Adžić P, Aničin IV, Đorđević M, Drndarevic S, Jovanović DJ, Krpić D, Maletić D, Milenović P, Puzović JM. Radiation hardness qualification of PbWO4 scintillation crystals for the CMS Electromagnetic Calorimeter. in Journal of Instrumentation. 2010;5.
doi:10.1088/1748-0221/5/03/P03010 .
Adžić, Petar, Aničin, Ivan V., Đorđević, Miloš, Drndarevic, S., Jovanović, Dragana J., Krpić, D., Maletić, Dimitrije, Milenović, Predrag, Puzović, Jovan M., "Radiation hardness qualification of PbWO4 scintillation crystals for the CMS Electromagnetic Calorimeter" in Journal of Instrumentation, 5 (2010),
https://doi.org/10.1088/1748-0221/5/03/P03010 . .
31
31
37

First Measurement of Bose-Einstein Correlations in Proton-Proton Collisions at root s=0.9 and 2.36 TeV at the LHC

Khachatryan, V.; Adžić, Petar; Đorđević, Miloš; Krpić, D.; Maletić, Dimitrije; Milošević, Jovan; Puzović, Jovan M.; Milenović, Predrag; Reković, Vladimir

(2010)

TY  - JOUR
AU  - Khachatryan, V.
AU  - Adžić, Petar
AU  - Đorđević, Miloš
AU  - Krpić, D.
AU  - Maletić, Dimitrije
AU  - Milošević, Jovan
AU  - Puzović, Jovan M.
AU  - Milenović, Predrag
AU  - Reković, Vladimir
PY  - 2010
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/4040
AB  - Bose-Einstein correlations have been measured using samples of proton-proton collisions at 0.9 and 2.36 TeV center-of-mass energies, recorded by the CMS experiment at the CERN Large Hadron Collider. The signal is observed in the form of an enhancement of pairs of same-sign charged particles with small relative four-momentum. The size of the correlated particle emission region is seen to increase significantly with the particle multiplicity of the event.
T2  - Physical Review Letters
T1  - First Measurement of Bose-Einstein Correlations in Proton-Proton Collisions at root s=0.9 and 2.36 TeV at the LHC
VL  - 105
IS  - 3
DO  - 10.1103/PhysRevLett.105.032001
ER  - 
@article{
author = "Khachatryan, V. and Adžić, Petar and Đorđević, Miloš and Krpić, D. and Maletić, Dimitrije and Milošević, Jovan and Puzović, Jovan M. and Milenović, Predrag and Reković, Vladimir",
year = "2010",
abstract = "Bose-Einstein correlations have been measured using samples of proton-proton collisions at 0.9 and 2.36 TeV center-of-mass energies, recorded by the CMS experiment at the CERN Large Hadron Collider. The signal is observed in the form of an enhancement of pairs of same-sign charged particles with small relative four-momentum. The size of the correlated particle emission region is seen to increase significantly with the particle multiplicity of the event.",
journal = "Physical Review Letters",
title = "First Measurement of Bose-Einstein Correlations in Proton-Proton Collisions at root s=0.9 and 2.36 TeV at the LHC",
volume = "105",
number = "3",
doi = "10.1103/PhysRevLett.105.032001"
}
Khachatryan, V., Adžić, P., Đorđević, M., Krpić, D., Maletić, D., Milošević, J., Puzović, J. M., Milenović, P.,& Reković, V.. (2010). First Measurement of Bose-Einstein Correlations in Proton-Proton Collisions at root s=0.9 and 2.36 TeV at the LHC. in Physical Review Letters, 105(3).
https://doi.org/10.1103/PhysRevLett.105.032001
Khachatryan V, Adžić P, Đorđević M, Krpić D, Maletić D, Milošević J, Puzović JM, Milenović P, Reković V. First Measurement of Bose-Einstein Correlations in Proton-Proton Collisions at root s=0.9 and 2.36 TeV at the LHC. in Physical Review Letters. 2010;105(3).
doi:10.1103/PhysRevLett.105.032001 .
Khachatryan, V., Adžić, Petar, Đorđević, Miloš, Krpić, D., Maletić, Dimitrije, Milošević, Jovan, Puzović, Jovan M., Milenović, Predrag, Reković, Vladimir, "First Measurement of Bose-Einstein Correlations in Proton-Proton Collisions at root s=0.9 and 2.36 TeV at the LHC" in Physical Review Letters, 105, no. 3 (2010),
https://doi.org/10.1103/PhysRevLett.105.032001 . .
12
52
58
71

Transverse-Momentum and Pseudorapidity Distributions of Charged Hadrons in pp Collisions at root s=7 TeV

Khachatryan, V.; Adžić, Petar; Đorđević, Miloš; Krpić, D.; Maletić, Dimitrije; Milošević, Jovan; Puzović, Jovan M.; Milenović, Predrag; Reković, Vladimir

(2010)

TY  - JOUR
AU  - Khachatryan, V.
AU  - Adžić, Petar
AU  - Đorđević, Miloš
AU  - Krpić, D.
AU  - Maletić, Dimitrije
AU  - Milošević, Jovan
AU  - Puzović, Jovan M.
AU  - Milenović, Predrag
AU  - Reković, Vladimir
PY  - 2010
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/4031
AB  - Charged-hadron transverse-momentum and pseudorapidity distributions in proton-proton collisions at root s = 7 TeV are measured with the inner tracking system of the CMS detector at the LHC. The charged-hadron yield is obtained by counting the number of reconstructed hits, hit pairs, and fully reconstructed charged-particle tracks. The combination of the three methods gives a charged-particle multiplicity per unit of pseudorapidity dN(ch)/d eta vertical bar(vertical bar eta vertical bar LT 0.5) = 5.78 +/- 0.01(stat) +/- 0.23(stat) for non-single-diffractive events, higher than predicted by commonly used models. The relative increase in charged-particle multiplicity from root s = 0.9 to 7 TeV is [66.1 +/- 1.0(stat) +/- 4.2(syst)]%. The mean transverse momentum is measured to be 0.545 +/- 0.005(stat) +/- 0.015(syst) GeV/c. The results are compared with similar measurements at lower energies.
T2  - Physical Review Letters
T1  - Transverse-Momentum and Pseudorapidity Distributions of Charged Hadrons in pp Collisions at root s=7 TeV
VL  - 105
IS  - 2
DO  - 10.1103/PhysRevLett.105.022002
ER  - 
@article{
author = "Khachatryan, V. and Adžić, Petar and Đorđević, Miloš and Krpić, D. and Maletić, Dimitrije and Milošević, Jovan and Puzović, Jovan M. and Milenović, Predrag and Reković, Vladimir",
year = "2010",
abstract = "Charged-hadron transverse-momentum and pseudorapidity distributions in proton-proton collisions at root s = 7 TeV are measured with the inner tracking system of the CMS detector at the LHC. The charged-hadron yield is obtained by counting the number of reconstructed hits, hit pairs, and fully reconstructed charged-particle tracks. The combination of the three methods gives a charged-particle multiplicity per unit of pseudorapidity dN(ch)/d eta vertical bar(vertical bar eta vertical bar LT 0.5) = 5.78 +/- 0.01(stat) +/- 0.23(stat) for non-single-diffractive events, higher than predicted by commonly used models. The relative increase in charged-particle multiplicity from root s = 0.9 to 7 TeV is [66.1 +/- 1.0(stat) +/- 4.2(syst)]%. The mean transverse momentum is measured to be 0.545 +/- 0.005(stat) +/- 0.015(syst) GeV/c. The results are compared with similar measurements at lower energies.",
journal = "Physical Review Letters",
title = "Transverse-Momentum and Pseudorapidity Distributions of Charged Hadrons in pp Collisions at root s=7 TeV",
volume = "105",
number = "2",
doi = "10.1103/PhysRevLett.105.022002"
}
Khachatryan, V., Adžić, P., Đorđević, M., Krpić, D., Maletić, D., Milošević, J., Puzović, J. M., Milenović, P.,& Reković, V.. (2010). Transverse-Momentum and Pseudorapidity Distributions of Charged Hadrons in pp Collisions at root s=7 TeV. in Physical Review Letters, 105(2).
https://doi.org/10.1103/PhysRevLett.105.022002
Khachatryan V, Adžić P, Đorđević M, Krpić D, Maletić D, Milošević J, Puzović JM, Milenović P, Reković V. Transverse-Momentum and Pseudorapidity Distributions of Charged Hadrons in pp Collisions at root s=7 TeV. in Physical Review Letters. 2010;105(2).
doi:10.1103/PhysRevLett.105.022002 .
Khachatryan, V., Adžić, Petar, Đorđević, Miloš, Krpić, D., Maletić, Dimitrije, Milošević, Jovan, Puzović, Jovan M., Milenović, Predrag, Reković, Vladimir, "Transverse-Momentum and Pseudorapidity Distributions of Charged Hadrons in pp Collisions at root s=7 TeV" in Physical Review Letters, 105, no. 2 (2010),
https://doi.org/10.1103/PhysRevLett.105.022002 . .
11
410
478
489

Measurement of the muon stopping power in lead tungstate

Chatrchyan, S.; Adžić, Petar; Đorđević, Miloš; Jovanović, Dragana J.; Krpić, D.; Maletić, Dimitrije; Puzović, Jovan M.; Smiljković, Nikola; Milenović, Predrag

(2010)

TY  - JOUR
AU  - Chatrchyan, S.
AU  - Adžić, Petar
AU  - Đorđević, Miloš
AU  - Jovanović, Dragana J.
AU  - Krpić, D.
AU  - Maletić, Dimitrije
AU  - Puzović, Jovan M.
AU  - Smiljković, Nikola
AU  - Milenović, Predrag
PY  - 2010
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/3955
AB  - A large sample of cosmic ray events collected by the CMS detector is exploited to measure the specific energy loss of muons in the lead tungstate (PbWO4) of the electromagnetic calorimeter. The measurement spans a momentum range from 5 GeV/c to 1 TeV/c. The results are consistent with the expectations over the entire range. The calorimeter energy scale, set with 120 GeV/c electrons, is validated down to the sub-GeV region using energy deposits, of order 100MeV, associated with low-momentum muons. The muon critical energy in PbWO4 is measured to be 160(-6)(+5) +/- 8 GeV, in agreement with expectations. This is the first experimental determination of muon critical energy.
T2  - Journal of Instrumentation
T1  - Measurement of the muon stopping power in lead tungstate
VL  - 5
DO  - 10.1088/1748-0221/5/03/P03007
ER  - 
@article{
author = "Chatrchyan, S. and Adžić, Petar and Đorđević, Miloš and Jovanović, Dragana J. and Krpić, D. and Maletić, Dimitrije and Puzović, Jovan M. and Smiljković, Nikola and Milenović, Predrag",
year = "2010",
abstract = "A large sample of cosmic ray events collected by the CMS detector is exploited to measure the specific energy loss of muons in the lead tungstate (PbWO4) of the electromagnetic calorimeter. The measurement spans a momentum range from 5 GeV/c to 1 TeV/c. The results are consistent with the expectations over the entire range. The calorimeter energy scale, set with 120 GeV/c electrons, is validated down to the sub-GeV region using energy deposits, of order 100MeV, associated with low-momentum muons. The muon critical energy in PbWO4 is measured to be 160(-6)(+5) +/- 8 GeV, in agreement with expectations. This is the first experimental determination of muon critical energy.",
journal = "Journal of Instrumentation",
title = "Measurement of the muon stopping power in lead tungstate",
volume = "5",
doi = "10.1088/1748-0221/5/03/P03007"
}
Chatrchyan, S., Adžić, P., Đorđević, M., Jovanović, D. J., Krpić, D., Maletić, D., Puzović, J. M., Smiljković, N.,& Milenović, P.. (2010). Measurement of the muon stopping power in lead tungstate. in Journal of Instrumentation, 5.
https://doi.org/10.1088/1748-0221/5/03/P03007
Chatrchyan S, Adžić P, Đorđević M, Jovanović DJ, Krpić D, Maletić D, Puzović JM, Smiljković N, Milenović P. Measurement of the muon stopping power in lead tungstate. in Journal of Instrumentation. 2010;5.
doi:10.1088/1748-0221/5/03/P03007 .
Chatrchyan, S., Adžić, Petar, Đorđević, Miloš, Jovanović, Dragana J., Krpić, D., Maletić, Dimitrije, Puzović, Jovan M., Smiljković, Nikola, Milenović, Predrag, "Measurement of the muon stopping power in lead tungstate" in Journal of Instrumentation, 5 (2010),
https://doi.org/10.1088/1748-0221/5/03/P03007 . .
1
16
33
44

Time reconstruction and performance of the CMS electromagnetic calorimeter

Chatrchyan, S.; Adžić, Petar; Đorđević, Miloš; Jovanović, Dragana J.; Krpić, D.; Maletić, Dimitrije; Puzović, Jovan M.; Smiljković, Nikola; Milenović, Predrag

(2010)

TY  - JOUR
AU  - Chatrchyan, S.
AU  - Adžić, Petar
AU  - Đorđević, Miloš
AU  - Jovanović, Dragana J.
AU  - Krpić, D.
AU  - Maletić, Dimitrije
AU  - Puzović, Jovan M.
AU  - Smiljković, Nikola
AU  - Milenović, Predrag
PY  - 2010
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/3954
AB  - The resolution and the linearity of time measurements made with the CMS electromagnetic calorimeter are studied with samples of data from test beam electrons, cosmic rays, and beam-produced muons. The resulting time resolution measured by lead tungstate crystals is better than 100 ps for energy deposits larger than 10 GeV. Crystal-to-crystal synchronization with a precision of 500 ps is performed using muons produced with the first LHC beams in 2008.
T2  - Journal of Instrumentation
T1  - Time reconstruction and performance of the CMS electromagnetic calorimeter
VL  - 5
DO  - 10.1088/1748-0221/5/03/T03011
ER  - 
@article{
author = "Chatrchyan, S. and Adžić, Petar and Đorđević, Miloš and Jovanović, Dragana J. and Krpić, D. and Maletić, Dimitrije and Puzović, Jovan M. and Smiljković, Nikola and Milenović, Predrag",
year = "2010",
abstract = "The resolution and the linearity of time measurements made with the CMS electromagnetic calorimeter are studied with samples of data from test beam electrons, cosmic rays, and beam-produced muons. The resulting time resolution measured by lead tungstate crystals is better than 100 ps for energy deposits larger than 10 GeV. Crystal-to-crystal synchronization with a precision of 500 ps is performed using muons produced with the first LHC beams in 2008.",
journal = "Journal of Instrumentation",
title = "Time reconstruction and performance of the CMS electromagnetic calorimeter",
volume = "5",
doi = "10.1088/1748-0221/5/03/T03011"
}
Chatrchyan, S., Adžić, P., Đorđević, M., Jovanović, D. J., Krpić, D., Maletić, D., Puzović, J. M., Smiljković, N.,& Milenović, P.. (2010). Time reconstruction and performance of the CMS electromagnetic calorimeter. in Journal of Instrumentation, 5.
https://doi.org/10.1088/1748-0221/5/03/T03011
Chatrchyan S, Adžić P, Đorđević M, Jovanović DJ, Krpić D, Maletić D, Puzović JM, Smiljković N, Milenović P. Time reconstruction and performance of the CMS electromagnetic calorimeter. in Journal of Instrumentation. 2010;5.
doi:10.1088/1748-0221/5/03/T03011 .
Chatrchyan, S., Adžić, Petar, Đorđević, Miloš, Jovanović, Dragana J., Krpić, D., Maletić, Dimitrije, Puzović, Jovan M., Smiljković, Nikola, Milenović, Predrag, "Time reconstruction and performance of the CMS electromagnetic calorimeter" in Journal of Instrumentation, 5 (2010),
https://doi.org/10.1088/1748-0221/5/03/T03011 . .
1
39
43
62

Performance of the CMS hadron calorimeter with cosmic ray muons and LHC beam data

Chatrchyan, S.; Adžić, Petar; Đorđević, Miloš; Jovanović, Dragana J.; Krpić, D.; Maletić, Dimitrije; Puzović, Jovan M.; Smiljković, Nikola; Milenović, Predrag

(2010)

TY  - JOUR
AU  - Chatrchyan, S.
AU  - Adžić, Petar
AU  - Đorđević, Miloš
AU  - Jovanović, Dragana J.
AU  - Krpić, D.
AU  - Maletić, Dimitrije
AU  - Puzović, Jovan M.
AU  - Smiljković, Nikola
AU  - Milenović, Predrag
PY  - 2010
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/3953
AB  - The CMS Hadron Calorimeter in the barrel, endcap and forward regions is fully commissioned. Cosmic ray data were taken with and without magnetic field at the surface hall and after installation in the experimental hall, hundred meters underground. Various measurements were also performed during the few days of beam in the LHC in September 2008. Calibration parameters were extracted, and the energy response of the HCAL determined from test beam data has been checked.
T2  - Journal of Instrumentation
T1  - Performance of the CMS hadron calorimeter with cosmic ray muons and LHC beam data
VL  - 5
DO  - 10.1088/1748-0221/5/03/T03012
ER  - 
@article{
author = "Chatrchyan, S. and Adžić, Petar and Đorđević, Miloš and Jovanović, Dragana J. and Krpić, D. and Maletić, Dimitrije and Puzović, Jovan M. and Smiljković, Nikola and Milenović, Predrag",
year = "2010",
abstract = "The CMS Hadron Calorimeter in the barrel, endcap and forward regions is fully commissioned. Cosmic ray data were taken with and without magnetic field at the surface hall and after installation in the experimental hall, hundred meters underground. Various measurements were also performed during the few days of beam in the LHC in September 2008. Calibration parameters were extracted, and the energy response of the HCAL determined from test beam data has been checked.",
journal = "Journal of Instrumentation",
title = "Performance of the CMS hadron calorimeter with cosmic ray muons and LHC beam data",
volume = "5",
doi = "10.1088/1748-0221/5/03/T03012"
}
Chatrchyan, S., Adžić, P., Đorđević, M., Jovanović, D. J., Krpić, D., Maletić, D., Puzović, J. M., Smiljković, N.,& Milenović, P.. (2010). Performance of the CMS hadron calorimeter with cosmic ray muons and LHC beam data. in Journal of Instrumentation, 5.
https://doi.org/10.1088/1748-0221/5/03/T03012
Chatrchyan S, Adžić P, Đorđević M, Jovanović DJ, Krpić D, Maletić D, Puzović JM, Smiljković N, Milenović P. Performance of the CMS hadron calorimeter with cosmic ray muons and LHC beam data. in Journal of Instrumentation. 2010;5.
doi:10.1088/1748-0221/5/03/T03012 .
Chatrchyan, S., Adžić, Petar, Đorđević, Miloš, Jovanović, Dragana J., Krpić, D., Maletić, Dimitrije, Puzović, Jovan M., Smiljković, Nikola, Milenović, Predrag, "Performance of the CMS hadron calorimeter with cosmic ray muons and LHC beam data" in Journal of Instrumentation, 5 (2010),
https://doi.org/10.1088/1748-0221/5/03/T03012 . .
2
31
51
49