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Ultra-high concentration Ce3+-doped gadolinium-based borosilicate glass scintillators

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【作者】 孙心瑗; 华哲浩; 钱森; 蔡华; 韩纪锋; 胡丽丽; 李溦长; 乔旭升; 任晶; 唐高; 殷生华; 袁辉平; 张明辉;

【Author】 Xinyuan Sun;Zhehao Hua;Sen Qian;Hua Cai;Jifeng Han;Lili Hu;Weichang Li;Xusheng Qiao;Jing Ren;Gao Tang;Shenghua Yin;Huiping Yuan;Minghui Zhang;School of Mathematics and Physics, Key Laboratory of Energy Conversion Optoelectronic Functional Materials of Jiangxi Education Institutes,Key Laboratory of Jiangxi Province for Special Optoelectronic Artificial Crystal Materials, Jinggangshan University;Key Laboratory of Rare Earths, Ganjiang Innovation Academy, Chinese Academy of Sciences;China Building Materials Academy;Institute of High Energy Physics, Chinese Academy of Sciences;Key Lab of Radiation Physics and Technology of Ministry of Education, Sichuan University;Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences;State Key Laboratory of Silicon and Advanced Semiconductor Materials & Department of Materials Science and Engineering, Zhejiang University;College of Physics and Optoelectronic Engineering, Harbin Engineering University;College of Materials and Chemistry, China Jiliang University;Beijing Glass Research Institute;China Nuclear (Beijing) Nuclear Instrument Co. Ltd.;Shanghai Institute of Ceramics, Chinese Academy of Sciences;

【通讯作者】 孙心瑗;钱森;

【机构】 School of Mathematics and Physics, Key Laboratory of Energy Conversion Optoelectronic Functional Materials of Jiangxi Education Institutes,Key Laboratory of Jiangxi Province for Special Optoelectronic Artificial Crystal Materials, Jinggangshan University; Key Laboratory of Rare Earths, Ganjiang Innovation Academy, Chinese Academy of Sciences; China Building Materials Academy; Institute of High Energy Physics, Chinese Academy of Sciences; Key Lab of Radiation Physics and Technology of Ministry of Education, Sichuan University; Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences; State Key Laboratory of Silicon and Advanced Semiconductor Materials & Department of Materials Science and Engineering, Zhejiang University; College of Physics and Optoelectronic Engineering, Harbin Engineering University; College of Materials and Chemistry, China Jiliang University; Beijing Glass Research Institute; China Nuclear (Beijing) Nuclear Instrument Co. Ltd.; Shanghai Institute of Ceramics, Chinese Academy of Sciences;

【摘要】 Ce3+-doped gadolinium-based borosilicate(GBSCx) glass scintillators with an ultra-high concentration of 16%(mole fraction)were synthesized in ambient atmosphere for future calorimeter application. The valence state of Ce was precisely controlled in the glass by the X-ray absorption near edge structure(XANES) spectrum. With the increased Ce3+concentration,the bridging oxygen(BO)/non-bridging oxygen(NBO) ratio decreases notably from 5.15 to 0.56. The GBSCx glass scintillators exhibit the broad photoluminescence(PL) band within 350–550 nm regions, with a maximum PL quantum yield(PL QY) of 60.6%. In X-ray excited luminescence(XEL), the integral intensity of the GBSC2 glass is 18.4% compared to the BGO crystal.Meanwhile, it has the highest light yield of 1043 photons/MeV with an energy resolution of 28.4% at 662 keV under γ-ray excitation. When the doped concentration of Ce3+exceeds 4%(mole fraction), the proportion of light yield within 1 μs integral gate exceeds 95%, which conforms to the requirement of fast time response. Interestingly, the concentration quenching effect of high concentration Ce3+(x ≤ 14) does not occur in the glass scintillators under γ-ray excitation. With the increase of Ce3+concentration, both the fast(100–18 ns) and slow(1000–59 ns) components of scintillation decay time decrease dramatically. Therefore, the developed GBSCxglass scintillators, featured with the reasonable light yield and fast time response, have a promising application in future high energy physics(HEP) experiments.

【Abstract】 Ce3+-doped gadolinium-based borosilicate(GBSCx) glass scintillators with an ultra-high concentration of 16%(mole fraction)were synthesized in ambient atmosphere for future calorimeter application. The valence state of Ce was precisely controlled in the glass by the X-ray absorption near edge structure(XANES) spectrum. With the increased Ce3+concentration,the bridging oxygen(BO)/non-bridging oxygen(NBO) ratio decreases notably from 5.15 to 0.56. The GBSCx glass scintillators exhibit the broad photoluminescence(PL) band within 350–550 nm regions, with a maximum PL quantum yield(PL QY) of 60.6%. In X-ray excited luminescence(XEL), the integral intensity of the GBSC2 glass is 18.4% compared to the BGO crystal.Meanwhile, it has the highest light yield of 1043 photons/MeV with an energy resolution of 28.4% at 662 keV under γ-ray excitation. When the doped concentration of Ce3+exceeds 4%(mole fraction), the proportion of light yield within 1 μs integral gate exceeds 95%, which conforms to the requirement of fast time response. Interestingly, the concentration quenching effect of high concentration Ce3+(x ≤ 14) does not occur in the glass scintillators under γ-ray excitation. With the increase of Ce3+concentration, both the fast(100–18 ns) and slow(1000–59 ns) components of scintillation decay time decrease dramatically. Therefore, the developed GBSCxglass scintillators, featured with the reasonable light yield and fast time response, have a promising application in future high energy physics(HEP) experiments.

【基金】 supported by the National Natural Science Foundation of China (Nos. 52472001, 12335012, and 12375183);the opening fund of the Key Laboratory of Rare Earths, Chinese Academy of Sciences, and the Science and Technology Plan Project of Ji’an City (No. 20233-117685);the College Student Innovation and Entrepreneurship Training Program of China (No. 202510419009);Jiangxi Province (No. S202510419012)
  • 【文献出处】 Chinese Optics Letters ,中国光学快报(英文版) , 编辑部邮箱 ,2025年12期
  • 【分类号】TQ171.1
  • 【下载频次】5
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