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Doubling the relative sensitivity of YNbO4:Sm3+ luminescence thermometer by observing 4G7/2 emitting level

Authorized Users Only
2025
Authors
Đačanin Far, Ljubica
Ćirić, Aleksandar
Milenković, Katarina
Medić, Mina
Milićević, Bojana
Kuzman, Sanja
Dramićanin, Miroslav
Article (Published version)
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Abstract
The value of the energy gap between the thermally coupled emission levels of trivalent lanthanides limits the relative sensitivities of Boltzmann-type luminescent thermometers. The values of the relative sensitivities further decrease as the temperature increases, making their use challenging at high temperatures. Here, for the first time, we used the higher-energy emitting level of Sm3+ (4G7/2) to improve the relative sensitivity at high temperatures. We prepared a YNbO4:Sm3+ (6 mol% doping) luminescence thermometry probe using a vibrational ball mill, which homogenized the precursors, and thermally treated them for solid-state reactions. X-ray diffraction measurements proved that the phosphor crystallized in a monoclinic fergusonite-beta-(Y) structure, C2/c(15) space group, with a calculated average crystallite size of 83 nm. Scanning electron microscopy revealed the polycrystalline powder, with particles of about a few tens of micrometers. Photoluminescence excitation and emission s...pectra were recorded at 186 K as well as at room temperature. The excited state lifetime of the 4G5/2 level measured at 300 K is 0.42 ms. The emission spectra were recorded in the 300–650 K temperature range and analyzed using the luminescence intensity ratio method. The results demonstrated a twofold increase in relative sensitivity within the 500–650 K temperature range when compared to the first excited level (4F3/2). The highest relative sensitivity at 300 K is calculated from the 4F3/2 level to be 1.81 %K−1, while in the high temperature region it reached 1.31 %K−1 at 500 K (obtained from the 4G7/2 level). © 2025 Elsevier B.V.

Keywords:
Sm3+ / Luminesce intensity ratio / Luminescence thermometry / 4G7/2 level / Yttrium niobate
Source:
Journal of Luminescence, 2025, 280, 121125-
Funding / projects:
  • REMTES - Technology for Remote Temperature Measurements in Microfluidic Devices (RS-ScienceFundRS-Prizma2023_TT-7017)
  • Ministry of Science, Technological Development and Innovation of the Republic of Serbia, institutional funding - 200017 (University of Belgrade, Institute of Nuclear Sciences 'Vinča', Belgrade-Vinča) (RS-MESTD-inst-2020-200017)

DOI: 10.1016/j.jlumin.2025.121125

ISSN: 0022-2313

Scopus: 2-s2.0-85217371349
[ Google Scholar ]
URI
https://vinar.vin.bg.ac.rs/handle/123456789/14415
Collections
  • Radovi istraživača
  • REMTES
Institution/Community
Vinča
TY  - JOUR
AU  - Đačanin Far, Ljubica
AU  - Ćirić, Aleksandar
AU  - Milenković, Katarina
AU  - Medić, Mina
AU  - Milićević, Bojana
AU  - Kuzman, Sanja
AU  - Dramićanin, Miroslav
PY  - 2025
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/14415
AB  - The value of the energy gap between the thermally coupled emission levels of trivalent lanthanides limits the relative sensitivities of Boltzmann-type luminescent thermometers. The values of the relative sensitivities further decrease as the temperature increases, making their use challenging at high temperatures. Here, for the first time, we used the higher-energy emitting level of Sm3+ (4G7/2) to improve the relative sensitivity at high temperatures. We prepared a YNbO4:Sm3+ (6 mol% doping) luminescence thermometry probe using a vibrational ball mill, which homogenized the precursors, and thermally treated them for solid-state reactions. X-ray diffraction measurements proved that the phosphor crystallized in a monoclinic fergusonite-beta-(Y) structure, C2/c(15) space group, with a calculated average crystallite size of 83 nm. Scanning electron microscopy revealed the polycrystalline powder, with particles of about a few tens of micrometers. Photoluminescence excitation and emission spectra were recorded at 186 K as well as at room temperature. The excited state lifetime of the 4G5/2 level measured at 300 K is 0.42 ms. The emission spectra were recorded in the 300–650 K temperature range and analyzed using the luminescence intensity ratio method. The results demonstrated a twofold increase in relative sensitivity within the 500–650 K temperature range when compared to the first excited level (4F3/2). The highest relative sensitivity at 300 K is calculated from the 4F3/2 level to be 1.81 %K−1, while in the high temperature region it reached 1.31 %K−1 at 500 K (obtained from the 4G7/2 level). © 2025 Elsevier B.V.
T2  - Journal of Luminescence
T1  - Doubling the relative sensitivity of YNbO4:Sm3+ luminescence thermometer by observing 4G7/2 emitting level
VL  - 280
SP  - 121125
DO  - 10.1016/j.jlumin.2025.121125
ER  - 
@article{
author = "Đačanin Far, Ljubica and Ćirić, Aleksandar and Milenković, Katarina and Medić, Mina and Milićević, Bojana and Kuzman, Sanja and Dramićanin, Miroslav",
year = "2025",
abstract = "The value of the energy gap between the thermally coupled emission levels of trivalent lanthanides limits the relative sensitivities of Boltzmann-type luminescent thermometers. The values of the relative sensitivities further decrease as the temperature increases, making their use challenging at high temperatures. Here, for the first time, we used the higher-energy emitting level of Sm3+ (4G7/2) to improve the relative sensitivity at high temperatures. We prepared a YNbO4:Sm3+ (6 mol% doping) luminescence thermometry probe using a vibrational ball mill, which homogenized the precursors, and thermally treated them for solid-state reactions. X-ray diffraction measurements proved that the phosphor crystallized in a monoclinic fergusonite-beta-(Y) structure, C2/c(15) space group, with a calculated average crystallite size of 83 nm. Scanning electron microscopy revealed the polycrystalline powder, with particles of about a few tens of micrometers. Photoluminescence excitation and emission spectra were recorded at 186 K as well as at room temperature. The excited state lifetime of the 4G5/2 level measured at 300 K is 0.42 ms. The emission spectra were recorded in the 300–650 K temperature range and analyzed using the luminescence intensity ratio method. The results demonstrated a twofold increase in relative sensitivity within the 500–650 K temperature range when compared to the first excited level (4F3/2). The highest relative sensitivity at 300 K is calculated from the 4F3/2 level to be 1.81 %K−1, while in the high temperature region it reached 1.31 %K−1 at 500 K (obtained from the 4G7/2 level). © 2025 Elsevier B.V.",
journal = "Journal of Luminescence",
title = "Doubling the relative sensitivity of YNbO4:Sm3+ luminescence thermometer by observing 4G7/2 emitting level",
volume = "280",
pages = "121125",
doi = "10.1016/j.jlumin.2025.121125"
}
Đačanin Far, L., Ćirić, A., Milenković, K., Medić, M., Milićević, B., Kuzman, S.,& Dramićanin, M.. (2025). Doubling the relative sensitivity of YNbO4:Sm3+ luminescence thermometer by observing 4G7/2 emitting level. in Journal of Luminescence, 280, 121125.
https://doi.org/10.1016/j.jlumin.2025.121125
Đačanin Far L, Ćirić A, Milenković K, Medić M, Milićević B, Kuzman S, Dramićanin M. Doubling the relative sensitivity of YNbO4:Sm3+ luminescence thermometer by observing 4G7/2 emitting level. in Journal of Luminescence. 2025;280:121125.
doi:10.1016/j.jlumin.2025.121125 .
Đačanin Far, Ljubica, Ćirić, Aleksandar, Milenković, Katarina, Medić, Mina, Milićević, Bojana, Kuzman, Sanja, Dramićanin, Miroslav, "Doubling the relative sensitivity of YNbO4:Sm3+ luminescence thermometer by observing 4G7/2 emitting level" in Journal of Luminescence, 280 (2025):121125,
https://doi.org/10.1016/j.jlumin.2025.121125 . .

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