Metol Electrochemical Sensing over LASIS Gold Nanoparticle-Modified Screen-Printed Carbon Electrodes in Adsorption Studies with Waste Biomass-Derived Highly Porous Carbon Material
2026
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Аутори
Radenković, Marina
Lazić, Ana
Kovačević, Marija
Ognjanović, Miloš
Stanković, Dalibor
Relić, Dubravka
Kalijadis, Ana
Dimitrijević, Aleksandra
Živković, Sanja
Чланак у часопису (Објављена верзија)
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Приказ свих података о документуАпстракт
This work used activated carbon material obtained by chemical activation of abundantly available agricultural sunflower waste residues to remove metol (4-(methylamino) phenol sulfate, MTL) from aqueous solutions. The adsorbent structure was characterized using SEM-EDS and FT-IR spectroscopy. A modified screen-printed carbon electrode (SPCE) with gold nanoparticles synthesized using the Laser Ablation Synthesis in Solution (LASIS) method was used to detect MTL. The successful LASIS formation of gold nanoparticles was confirmed by the specific dark burgundy–red color. TEM measurements showed uniform pseudo-spherical particles with an average diameter of 7.9 ± 0.2 nm. The modified electrode showed improved electrochemical activity, which was confirmed by comparing it with an unmodified electrode using cyclic voltammetry and electrochemical impedance spectroscopy. The modified electrode was subsequently used to optimize the MTL detection conditions. UV–Vis spectroscopy was used to optimize... the adsorption conditions, with the optimal values for pH and contact time found to be 8 and 120 min, respectively. The electrochemical detection of MTL was performed using differential pulse voltammetry, and the linear calibration range was established for concentrations ranging from 0.73–49.35 µM. The obtained limits of detection (LOD) and quantification (LOQ) were 0.06 µM and 0.2 µM, respectively. The efficiency of MTL removal was 100% after a contact time of 1 min and remained at 100% after 120 min.
Кључне речи:
laser ablation in liquids / gold nanoparticles / modified screen-printed carbon electrode / activated carbon / metolИзвор:
Sustainable Chemistry, 2026, 7, 1, 5-Финансирање / пројекти:
- Министарство науке, технолошког развоја и иновација Републике Србије, институционално финансирање - 200017 (Универзитет у Београду, Институт за нуклеарне науке Винча, Београд-Винча) (RS-MESTD-inst-2020-200017)
- Министарство науке, технолошког развоја и иновација Републике Србије, институционално финансирање - 200168 (Универзитет у Београду, Хемијски факултет) (RS-MESTD-inst-2020-200168)
- 2025-11-04 Mobiles - Monitoring and detection of biotic and abiotic pollutants by electronic, plants and microorganisms based sensors (EU-HE-RIA-101135402)
Колекције
Институција/група
VinčaTY - JOUR AU - Radenković, Marina AU - Lazić, Ana AU - Kovačević, Marija AU - Ognjanović, Miloš AU - Stanković, Dalibor AU - Relić, Dubravka AU - Kalijadis, Ana AU - Dimitrijević, Aleksandra AU - Živković, Sanja PY - 2026 UR - https://vinar.vin.bg.ac.rs/handle/123456789/16094 AB - This work used activated carbon material obtained by chemical activation of abundantly available agricultural sunflower waste residues to remove metol (4-(methylamino) phenol sulfate, MTL) from aqueous solutions. The adsorbent structure was characterized using SEM-EDS and FT-IR spectroscopy. A modified screen-printed carbon electrode (SPCE) with gold nanoparticles synthesized using the Laser Ablation Synthesis in Solution (LASIS) method was used to detect MTL. The successful LASIS formation of gold nanoparticles was confirmed by the specific dark burgundy–red color. TEM measurements showed uniform pseudo-spherical particles with an average diameter of 7.9 ± 0.2 nm. The modified electrode showed improved electrochemical activity, which was confirmed by comparing it with an unmodified electrode using cyclic voltammetry and electrochemical impedance spectroscopy. The modified electrode was subsequently used to optimize the MTL detection conditions. UV–Vis spectroscopy was used to optimize the adsorption conditions, with the optimal values for pH and contact time found to be 8 and 120 min, respectively. The electrochemical detection of MTL was performed using differential pulse voltammetry, and the linear calibration range was established for concentrations ranging from 0.73–49.35 µM. The obtained limits of detection (LOD) and quantification (LOQ) were 0.06 µM and 0.2 µM, respectively. The efficiency of MTL removal was 100% after a contact time of 1 min and remained at 100% after 120 min. T2 - Sustainable Chemistry T1 - Metol Electrochemical Sensing over LASIS Gold Nanoparticle-Modified Screen-Printed Carbon Electrodes in Adsorption Studies with Waste Biomass-Derived Highly Porous Carbon Material VL - 7 IS - 1 SP - 5 DO - 10.3390/suschem7010005 ER -
@article{
author = "Radenković, Marina and Lazić, Ana and Kovačević, Marija and Ognjanović, Miloš and Stanković, Dalibor and Relić, Dubravka and Kalijadis, Ana and Dimitrijević, Aleksandra and Živković, Sanja",
year = "2026",
abstract = "This work used activated carbon material obtained by chemical activation of abundantly available agricultural sunflower waste residues to remove metol (4-(methylamino) phenol sulfate, MTL) from aqueous solutions. The adsorbent structure was characterized using SEM-EDS and FT-IR spectroscopy. A modified screen-printed carbon electrode (SPCE) with gold nanoparticles synthesized using the Laser Ablation Synthesis in Solution (LASIS) method was used to detect MTL. The successful LASIS formation of gold nanoparticles was confirmed by the specific dark burgundy–red color. TEM measurements showed uniform pseudo-spherical particles with an average diameter of 7.9 ± 0.2 nm. The modified electrode showed improved electrochemical activity, which was confirmed by comparing it with an unmodified electrode using cyclic voltammetry and electrochemical impedance spectroscopy. The modified electrode was subsequently used to optimize the MTL detection conditions. UV–Vis spectroscopy was used to optimize the adsorption conditions, with the optimal values for pH and contact time found to be 8 and 120 min, respectively. The electrochemical detection of MTL was performed using differential pulse voltammetry, and the linear calibration range was established for concentrations ranging from 0.73–49.35 µM. The obtained limits of detection (LOD) and quantification (LOQ) were 0.06 µM and 0.2 µM, respectively. The efficiency of MTL removal was 100% after a contact time of 1 min and remained at 100% after 120 min.",
journal = "Sustainable Chemistry",
title = "Metol Electrochemical Sensing over LASIS Gold Nanoparticle-Modified Screen-Printed Carbon Electrodes in Adsorption Studies with Waste Biomass-Derived Highly Porous Carbon Material",
volume = "7",
number = "1",
pages = "5",
doi = "10.3390/suschem7010005"
}
Radenković, M., Lazić, A., Kovačević, M., Ognjanović, M., Stanković, D., Relić, D., Kalijadis, A., Dimitrijević, A.,& Živković, S.. (2026). Metol Electrochemical Sensing over LASIS Gold Nanoparticle-Modified Screen-Printed Carbon Electrodes in Adsorption Studies with Waste Biomass-Derived Highly Porous Carbon Material. in Sustainable Chemistry, 7(1), 5. https://doi.org/10.3390/suschem7010005
Radenković M, Lazić A, Kovačević M, Ognjanović M, Stanković D, Relić D, Kalijadis A, Dimitrijević A, Živković S. Metol Electrochemical Sensing over LASIS Gold Nanoparticle-Modified Screen-Printed Carbon Electrodes in Adsorption Studies with Waste Biomass-Derived Highly Porous Carbon Material. in Sustainable Chemistry. 2026;7(1):5. doi:10.3390/suschem7010005 .
Radenković, Marina, Lazić, Ana, Kovačević, Marija, Ognjanović, Miloš, Stanković, Dalibor, Relić, Dubravka, Kalijadis, Ana, Dimitrijević, Aleksandra, Živković, Sanja, "Metol Electrochemical Sensing over LASIS Gold Nanoparticle-Modified Screen-Printed Carbon Electrodes in Adsorption Studies with Waste Biomass-Derived Highly Porous Carbon Material" in Sustainable Chemistry, 7, no. 1 (2026):5, https://doi.org/10.3390/suschem7010005 . .


