Research Article
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Year 2024, Volume: 14 Issue: 1, 51 - 63, 28.06.2024
https://doi.org/10.37094/adyujsci.1489596

Abstract

Project Number

FKB-2023-16411

References

  • [1] Bøtter-Jensen, L., McKeever, S.W.S., Wintle, A.G., Optically stimulated luminescence dosimetry, 1st ed, 355 pp, Elsevier, 2003.
  • [2] McKeever, S.W.S., Moscovitch, M., On the advantages and disadvantages of optically stimulated luminescence dosimetry and thermoluminescence dosimetry, Radiation Protection Dosimetry, 104(3), 263-270, 2003.
  • [3] Akselrod, M.S., Bøtter-Jensen, L., McKeever, S.W.S., Optically stimulated luminescence and its use in medical dosimetry, Radiation Measurements, 41(1), 78-99, 2006.
  • [4] Altunal, V., Guckan, V., Ozdemir, A., Yegingil Z., A calcination study on BeO ceramics for radiation dosimetry, Materials Research Bulletin, 130, 110921, 2020.
  • [5] Ozdemir, A., Altunal, V., Guckan, V., Kurt, K., Yegingil Z., Luminescence characteristics of newly-developed MgB4O7:Ce3+,Na+phosphor as an OSL dosimeter, Journal of Alloys and Compounds, 865, 158498, 2021.
  • [6] Altunal, V., Ozdemir, A., Kurt, K., Yigit, O., Guckan, V., Isik, B., Yegingil Z., Luminescence properties of Ce and Be-doped CaAl12O19 for dosimetric and light-emitting applications, Journal of Alloys and Compounds, 985, 174081, 2024.
  • [7] Guckan, V., Altunal, V., Ozdemir, A., Yegingil Z., Optically stimulated luminescence of MgO:Na,Li phosphor prepared using solution combustion method, Journal of Alloys and Compounds, 835, 155253, 2020.
  • [8] Ozdemir, A., Guckan, V., Altunal, V., Kurt, K., Yegingil Z., Thermoluminescence in MgB4O7:Pr,Dy dosimetry powder synthesized by solution combustion synthesis method, Journal of Luminescence, 230, 117761, 2021.
  • [9] Nur, N., Guckan, V., Kizilkaya, N., Depci, T., Ahmedova, C., Ozdemir, A., Altunal, V., Yegingil Z., Thermoluminescence properties of non-stoichiometric Li2Si2O5 synthesized from natural amethyst quartz, Journal of Luminescence, 179, 366-371, 2016.
  • [10] McKeever, S.W.S., Akselrod, M.S., Colyott, L.E., Agersnap Larsen, N., Polf, J.C., Whitley, V., Characterisation of Al2O3 for use in thermally and optically stimulated luminescence dosimetry, Radiation Protection Dosimetry, 84(1-4), 163-166, 1999.
  • [11] Akselrod, M.S., Lucas, A.C., Polf, J.C., McKeever, S.W.S., Optically stimulated luminescence of Al2O3, Radiation Measurements, 29(3-4), 391-399, 1998.
  • [12] Dhabekar, B., Raja, E.A., Menon, S., Gundu Rao, T.K., Kher, R.K., Bhatt,nB.C., Identification of defect centres using TSL, PL, OSL and ESR studies in LiAlO2 based phosphors, Journal of Physics D: Applied Physics., 41, 115414, 2008.
  • [13] Jopat, P.R., Sisodiya, D.S., Sen, S., M.S. Kulkarni, LiAlO2:Sm a highly sensitive and multi-functional radiation dosimeter, Ceramics International, 48(24), 36593-36600, 2022.
  • [14] Wani, M.A., Dhoble, S.J., Belekar, R.M., Synthesis, characterization and spectroscopic properties of some rare earth activated LiAlO2 phosphor, Optik, 226(1), 165938, 2021.
  • [15] Bajaj, N.S., Omanwar, S.K., LEDs phosphor BaAl2O4:Sm prepared by solution combustion synthesis, AIP Conference Proceedings, 1536(1), 803-804, 2013.
  • [16] Poort, S., Blokpoel, W.P., Blasse, G., Luminescence of Eu2+ in barium and strontium aluminate and gallate, Chemistry of Materials, 7(8), 1547-1551, 1995.
  • [17] Agarwal, M., Garg, S.K., Asokan, K., Kumar, P., Temperature-dependent OSL properties of nano-phosphors LiAlO2:C and α-Al2O3:C, Applied Surface Science, 444, 819-828, 2018.
  • [18] Lee, J.I., Pradhan, A.S., Kim, J.L., Chang, I., Kim, B.H., Chung, K.S., Characteristics of LiAlO2–Radioluminescence and optically stimulated luminescence, Radiation Measurement., 56, 217-222, 2013.
  • [19] Dickens, P.T., Marcial, J., McCloy, J., McDonald, B.S., Lynn, K.G., Spectroscopic and neutron detection properties of rare earth and titanium doped LiAlO2 single crystals, Journal of Luminescence, 190, 242-248, 2017.
  • [20] Takebuchi, Y., Watanabe, K., Nakauchi, D., Fukushima, H., Kato, T., Kawaguchi, N., Yanagida, T., Scintillation properties of Ce-doped LiAlO2 for neutron detection, Journal of the Ceramic Society of Japan, 129(7), 397-401, 2021.
  • [21] Twardak, A., Bilski, P., Marczewska, B., Lee, J.I., Kim, J.L., Gieszczyk, W., Mrozik, Sądel, A., M., Wróbel, D., Properties of lithium aluminate for application as an OSL dosimeter, Radiation Physics and Chemistry, 104, 76-79, 2014.
  • [22] Klug, H.P., Alexander, L.E., X-ray diffraction procedures: for polycrystalline and amorphous materials, X-Ray Diffraction Procedures: For Polycrystalline and Amorphous Materials, 2nd ed, 992 pp, Wiley, 1974.
  • [23] Norazlina, M.S., Shanmugan, S., Mutharasu, D., Structural Analysis of BeO Nanoparticles Synthesized by Polyacrylamide Gel Route, Advanced Science Focus, 1, 362-366, 2013.
  • [24] Theivasanthi, T., Alagar, M., Electrolytic synthesis and characterizations of silver nanopowder, Nano Biomedicine and Engineering, 4(2), 58-65, 2012.
  • [25] Altunal, V., Yegingil, Z., Tuken, T., Depci, T., Ozdemir, A., Guckan, V., Nur, N., Kurt, K., Bulur, E., Optically stimulated luminescence characteristics of BeO nanoparticles synthesized by sol-gel method, Radiation Measurements, 118, 54-66, 2018.
  • [26] Altunal, V., Guckan, V., Ozdemir, A., Zydhachevskyy, Y., Lawrence, Y., Yu, Y., Yegingil, Z., Three newly developed BeO-based OSL dosimeters, Journal of Luminescence, 241, 118528, 2022.
  • [27] Balian, H.G., Eddy, N.W., Figure-of-merit (FOM), an improved criterion over the normalized chi-squared test for assessing goodness-of-fit of gamma-ray spectral peaks, Nuclear Instruments and Methods, 145, 389-395, 1977.
  • [28] Pejchal, J., Fujimoto, Y., Chani, V., Yanagida, T., Yokota, Y., Yoshikawa, A., Nikl, M., Beitlerova, A., Modifications of micro-pulling-down method for the growth of selected Li-containing crystals for neutron scintillator and VUV scintillation crystals, Journal of Crystal Growth, 360, 127-130, 2012.
  • [29] Li, P.G., Lei, M., Tang, W.H., Raman and photoluminescence properties of α-Al2O3 microcones with hierarchical and repetitive superstructure, Materials Letters, 64(2), 161-163,2010.
  • [30] Tavernier, S., Gektin, A., Grinyov, B., Moses, W.W., Radiation detectors for medical applications, 1st ed, 307 pp, Springer Dordrecht, 2006.

Structural and Luminescence Characterization of LiAlO2 Ceramics Synthesized by Sol-Gel Technique

Year 2024, Volume: 14 Issue: 1, 51 - 63, 28.06.2024
https://doi.org/10.37094/adyujsci.1489596

Abstract

This study aims to produce lithium aluminate (LiAlO2) materials as dense ceramics by the sol-gel method and to examine their structural and luminescence properties for radiation dosimetry applications. The crystal structures of ceramics synthesized using the XRD method were confirmed and their morphological properties were examined using SEM analysis. The defect concentrations and lattice parameters of LiAlO2 were also discussed in depth. It has been found that LiAlO2 ceramics have a total of three exponential decay function components that decay OSL signals fast, medium and slow. The TL glow curve of the material exhibited two TL peaks located around 110 and 200 °C. An intense luminescence band around 700 nm was found in RL and TL emissions, which is attributed to oxygen vacancies in the structure. Obtaining promising luminescence signals for passive dosimetry from LiAlO2 samples in this study may make them a candidate dosimeter for radiation dosimetry applications with further studies to be conducted in the future.

Ethical Statement

Ethics Committee Approval is not required.

Supporting Institution

Cukurova University

Project Number

FKB-2023-16411

Thanks

This study was supported financially by the Çukurova University Research Projects Development and Coordination Unit under contract number FKB-2023-16411. Therefore, I am grateful to the Rectorate of Çukurova University for their financial support. I thank Prof. Kasım Kurt and Özlem Yiğit from Mersin University for their valuable contributions to RL and TL emission measurements.

References

  • [1] Bøtter-Jensen, L., McKeever, S.W.S., Wintle, A.G., Optically stimulated luminescence dosimetry, 1st ed, 355 pp, Elsevier, 2003.
  • [2] McKeever, S.W.S., Moscovitch, M., On the advantages and disadvantages of optically stimulated luminescence dosimetry and thermoluminescence dosimetry, Radiation Protection Dosimetry, 104(3), 263-270, 2003.
  • [3] Akselrod, M.S., Bøtter-Jensen, L., McKeever, S.W.S., Optically stimulated luminescence and its use in medical dosimetry, Radiation Measurements, 41(1), 78-99, 2006.
  • [4] Altunal, V., Guckan, V., Ozdemir, A., Yegingil Z., A calcination study on BeO ceramics for radiation dosimetry, Materials Research Bulletin, 130, 110921, 2020.
  • [5] Ozdemir, A., Altunal, V., Guckan, V., Kurt, K., Yegingil Z., Luminescence characteristics of newly-developed MgB4O7:Ce3+,Na+phosphor as an OSL dosimeter, Journal of Alloys and Compounds, 865, 158498, 2021.
  • [6] Altunal, V., Ozdemir, A., Kurt, K., Yigit, O., Guckan, V., Isik, B., Yegingil Z., Luminescence properties of Ce and Be-doped CaAl12O19 for dosimetric and light-emitting applications, Journal of Alloys and Compounds, 985, 174081, 2024.
  • [7] Guckan, V., Altunal, V., Ozdemir, A., Yegingil Z., Optically stimulated luminescence of MgO:Na,Li phosphor prepared using solution combustion method, Journal of Alloys and Compounds, 835, 155253, 2020.
  • [8] Ozdemir, A., Guckan, V., Altunal, V., Kurt, K., Yegingil Z., Thermoluminescence in MgB4O7:Pr,Dy dosimetry powder synthesized by solution combustion synthesis method, Journal of Luminescence, 230, 117761, 2021.
  • [9] Nur, N., Guckan, V., Kizilkaya, N., Depci, T., Ahmedova, C., Ozdemir, A., Altunal, V., Yegingil Z., Thermoluminescence properties of non-stoichiometric Li2Si2O5 synthesized from natural amethyst quartz, Journal of Luminescence, 179, 366-371, 2016.
  • [10] McKeever, S.W.S., Akselrod, M.S., Colyott, L.E., Agersnap Larsen, N., Polf, J.C., Whitley, V., Characterisation of Al2O3 for use in thermally and optically stimulated luminescence dosimetry, Radiation Protection Dosimetry, 84(1-4), 163-166, 1999.
  • [11] Akselrod, M.S., Lucas, A.C., Polf, J.C., McKeever, S.W.S., Optically stimulated luminescence of Al2O3, Radiation Measurements, 29(3-4), 391-399, 1998.
  • [12] Dhabekar, B., Raja, E.A., Menon, S., Gundu Rao, T.K., Kher, R.K., Bhatt,nB.C., Identification of defect centres using TSL, PL, OSL and ESR studies in LiAlO2 based phosphors, Journal of Physics D: Applied Physics., 41, 115414, 2008.
  • [13] Jopat, P.R., Sisodiya, D.S., Sen, S., M.S. Kulkarni, LiAlO2:Sm a highly sensitive and multi-functional radiation dosimeter, Ceramics International, 48(24), 36593-36600, 2022.
  • [14] Wani, M.A., Dhoble, S.J., Belekar, R.M., Synthesis, characterization and spectroscopic properties of some rare earth activated LiAlO2 phosphor, Optik, 226(1), 165938, 2021.
  • [15] Bajaj, N.S., Omanwar, S.K., LEDs phosphor BaAl2O4:Sm prepared by solution combustion synthesis, AIP Conference Proceedings, 1536(1), 803-804, 2013.
  • [16] Poort, S., Blokpoel, W.P., Blasse, G., Luminescence of Eu2+ in barium and strontium aluminate and gallate, Chemistry of Materials, 7(8), 1547-1551, 1995.
  • [17] Agarwal, M., Garg, S.K., Asokan, K., Kumar, P., Temperature-dependent OSL properties of nano-phosphors LiAlO2:C and α-Al2O3:C, Applied Surface Science, 444, 819-828, 2018.
  • [18] Lee, J.I., Pradhan, A.S., Kim, J.L., Chang, I., Kim, B.H., Chung, K.S., Characteristics of LiAlO2–Radioluminescence and optically stimulated luminescence, Radiation Measurement., 56, 217-222, 2013.
  • [19] Dickens, P.T., Marcial, J., McCloy, J., McDonald, B.S., Lynn, K.G., Spectroscopic and neutron detection properties of rare earth and titanium doped LiAlO2 single crystals, Journal of Luminescence, 190, 242-248, 2017.
  • [20] Takebuchi, Y., Watanabe, K., Nakauchi, D., Fukushima, H., Kato, T., Kawaguchi, N., Yanagida, T., Scintillation properties of Ce-doped LiAlO2 for neutron detection, Journal of the Ceramic Society of Japan, 129(7), 397-401, 2021.
  • [21] Twardak, A., Bilski, P., Marczewska, B., Lee, J.I., Kim, J.L., Gieszczyk, W., Mrozik, Sądel, A., M., Wróbel, D., Properties of lithium aluminate for application as an OSL dosimeter, Radiation Physics and Chemistry, 104, 76-79, 2014.
  • [22] Klug, H.P., Alexander, L.E., X-ray diffraction procedures: for polycrystalline and amorphous materials, X-Ray Diffraction Procedures: For Polycrystalline and Amorphous Materials, 2nd ed, 992 pp, Wiley, 1974.
  • [23] Norazlina, M.S., Shanmugan, S., Mutharasu, D., Structural Analysis of BeO Nanoparticles Synthesized by Polyacrylamide Gel Route, Advanced Science Focus, 1, 362-366, 2013.
  • [24] Theivasanthi, T., Alagar, M., Electrolytic synthesis and characterizations of silver nanopowder, Nano Biomedicine and Engineering, 4(2), 58-65, 2012.
  • [25] Altunal, V., Yegingil, Z., Tuken, T., Depci, T., Ozdemir, A., Guckan, V., Nur, N., Kurt, K., Bulur, E., Optically stimulated luminescence characteristics of BeO nanoparticles synthesized by sol-gel method, Radiation Measurements, 118, 54-66, 2018.
  • [26] Altunal, V., Guckan, V., Ozdemir, A., Zydhachevskyy, Y., Lawrence, Y., Yu, Y., Yegingil, Z., Three newly developed BeO-based OSL dosimeters, Journal of Luminescence, 241, 118528, 2022.
  • [27] Balian, H.G., Eddy, N.W., Figure-of-merit (FOM), an improved criterion over the normalized chi-squared test for assessing goodness-of-fit of gamma-ray spectral peaks, Nuclear Instruments and Methods, 145, 389-395, 1977.
  • [28] Pejchal, J., Fujimoto, Y., Chani, V., Yanagida, T., Yokota, Y., Yoshikawa, A., Nikl, M., Beitlerova, A., Modifications of micro-pulling-down method for the growth of selected Li-containing crystals for neutron scintillator and VUV scintillation crystals, Journal of Crystal Growth, 360, 127-130, 2012.
  • [29] Li, P.G., Lei, M., Tang, W.H., Raman and photoluminescence properties of α-Al2O3 microcones with hierarchical and repetitive superstructure, Materials Letters, 64(2), 161-163,2010.
  • [30] Tavernier, S., Gektin, A., Grinyov, B., Moses, W.W., Radiation detectors for medical applications, 1st ed, 307 pp, Springer Dordrecht, 2006.
There are 30 citations in total.

Details

Primary Language English
Subjects Material Physics, Radiophysics
Journal Section Physics
Authors

Volkan Altunal 0000-0001-9411-3441

Project Number FKB-2023-16411
Publication Date June 28, 2024
Submission Date May 24, 2024
Acceptance Date June 23, 2024
Published in Issue Year 2024 Volume: 14 Issue: 1

Cite

APA Altunal, V. (2024). Structural and Luminescence Characterization of LiAlO2 Ceramics Synthesized by Sol-Gel Technique. Adıyaman University Journal of Science, 14(1), 51-63. https://doi.org/10.37094/adyujsci.1489596
AMA Altunal V. Structural and Luminescence Characterization of LiAlO2 Ceramics Synthesized by Sol-Gel Technique. ADYU J SCI. June 2024;14(1):51-63. doi:10.37094/adyujsci.1489596
Chicago Altunal, Volkan. “Structural and Luminescence Characterization of LiAlO2 Ceramics Synthesized by Sol-Gel Technique”. Adıyaman University Journal of Science 14, no. 1 (June 2024): 51-63. https://doi.org/10.37094/adyujsci.1489596.
EndNote Altunal V (June 1, 2024) Structural and Luminescence Characterization of LiAlO2 Ceramics Synthesized by Sol-Gel Technique. Adıyaman University Journal of Science 14 1 51–63.
IEEE V. Altunal, “Structural and Luminescence Characterization of LiAlO2 Ceramics Synthesized by Sol-Gel Technique”, ADYU J SCI, vol. 14, no. 1, pp. 51–63, 2024, doi: 10.37094/adyujsci.1489596.
ISNAD Altunal, Volkan. “Structural and Luminescence Characterization of LiAlO2 Ceramics Synthesized by Sol-Gel Technique”. Adıyaman University Journal of Science 14/1 (June 2024), 51-63. https://doi.org/10.37094/adyujsci.1489596.
JAMA Altunal V. Structural and Luminescence Characterization of LiAlO2 Ceramics Synthesized by Sol-Gel Technique. ADYU J SCI. 2024;14:51–63.
MLA Altunal, Volkan. “Structural and Luminescence Characterization of LiAlO2 Ceramics Synthesized by Sol-Gel Technique”. Adıyaman University Journal of Science, vol. 14, no. 1, 2024, pp. 51-63, doi:10.37094/adyujsci.1489596.
Vancouver Altunal V. Structural and Luminescence Characterization of LiAlO2 Ceramics Synthesized by Sol-Gel Technique. ADYU J SCI. 2024;14(1):51-63.

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