Comprehensive property engineering of YGdAP:Ce scintillation crystals by optimizing the Y/Gd ratio

IF 2.6 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
CrystEngComm Pub Date : 2025-08-08 DOI:10.1039/D5CE00502G
Lixiang Wang, Rui Zheng, Yuxiang Chen, Yulong Liu, Jingbin Chen, Peng Xiao, Junhui Yuan, Jiafu Wang and Qingguo Xie
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Abstract

Rare-earth aluminate perovskites have emerged as a promising class of scintillation crystals due to their high density and fast decay time. However, engineering their properties and growing bulk crystals with superior comprehensive performance for γ-ray detection remain a significant challenge. This paper employed a miniaturized Czochralski system to grow a series of continuous solid solution single crystals, Y1−xGdxAlO3:0.5%Ce (x = 0, 0.25, 0.5, 0.75, 1), and studied their quality, optical, and scintillation properties. Our findings demonstrate that the Gd3+ concentration induces lattice distortion and cracking due to configurational entropy and local chemical stress, highlighting the need for optimizing growth conditions. Furthermore, the electronic structure analysis reveals that higher Gd3+ content reduces the bandgap and the rising edge of the Ce3+ 4f–5d1 absorption transition, leading to a diminished light yield. Lastly, energy transfer between Gd3+ and Ce3+ evolves with Gd3+ concentration, resulting in faster decay times and changes in emission spectra, which offer valuable guidance for tailoring scintillation performance. This paper concludes that the comprehensive performance of YGdAP:Ce can be successfully optimized by elaborately adjusting the Y/Gd ratio. The tailored Y0.5Gd0.5AlO3:0.5%Ce crystal features a high density (6.43 g cm−3), an extremely fast decay component (8.7 ns, 42.1%), and a relatively high light yield (12 000 ph MeV−1). It integrates good scintillation performance, comparable to that of YAP:Ce, and high γ-ray detection efficiency. Moreover, the absence of expensive lutetium in YGdAP:Ce makes it a cost-effective alternative scintillator for γ-ray detectors.

Abstract Image

优化Y/Gd比的YGdAP:Ce闪烁晶体综合性能工程
稀土铝酸盐钙钛矿因其高密度和快速衰减而成为一类很有前途的闪烁晶体。然而,设计它们的性质和生长具有优越综合性能的体晶体用于γ射线探测仍然是一个重大挑战。本文采用小型化的Czochralski体系,生长了一系列连续固溶体单晶Y1−xGdxAlO3:0.5%Ce (x = 0, 0.25, 0.5, 0.75, 1),并研究了它们的质量、光学性能和闪烁性能。我们的研究结果表明,由于构型熵和局部化学应力,Gd3+浓度引起晶格畸变和开裂,突出了优化生长条件的必要性。此外,电子结构分析表明,较高的Gd3+含量降低了Ce3+ 4f-5d1吸收跃迁的带隙和上升沿,导致产光率降低。最后,Gd3+和Ce3+之间的能量转移随Gd3+浓度的变化而变化,导致更快的衰减时间和发射光谱的变化,这为定制闪烁性能提供了有价值的指导。本文的结论是,通过精心调整Y/Gd比,可以成功地优化YGdAP:Ce的综合性能。Y0.5Gd0.5AlO3:0.5%Ce晶体具有高密度(6.43 g cm−3)、极快的衰减成分(8.7 ns, 42.1%)和相对较高的光产率(12 000 ph MeV−1)。它集成了与YAP:Ce相当的良好闪烁性能和高γ射线探测效率。此外,YGdAP:Ce中不含昂贵的镥,这使得它成为一种具有成本效益的γ射线探测器的替代闪烁体。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CrystEngComm
CrystEngComm 化学-化学综合
CiteScore
5.50
自引率
9.70%
发文量
747
审稿时长
1.7 months
期刊介绍: Design and understanding of solid-state and crystalline materials
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