Key Laboratory of Aerospace Advanced Materials and Performance of Ministry of Education, School of Materials Science & Engineering , Beihang University , Beijing 100191 , China.
ACS Appl Mater Interfaces. 2019 Feb 27;11(8):8194-8201. doi: 10.1021/acsami.8b19040. Epub 2019 Feb 6.
Lithium codoping has emerged as an effective strategy to enhance the light yield of oxide scintillators for radiation detection applications, but the understanding of the actual role played by Li remains unclear. In this work, we comprehensively study the effects of Li codoping on optical and scintillation properties of LuSiO:Ce (LSO:Ce) single crystals and reveal the critical role of site occupancy of Li. High-quality LSO:Ce single crystals codoped with 0.05, 0.1, and 0.3 at. % Li ions were grown by the Czochralski method. The optical absorption spectra confirm nonconversion of stable Ce to Ce in Li-codoped LSO:Ce regardless of the Li codoping concentration. The photoluminescence decay kinetics suggest an enhanced ionization of the excited 5d state of Ce centers in highly codoped samples. A simultaneous improvement of scintillation light yield, decay time, and afterglow is achieved in LSO:Ce codoped with low concentrations of Li. The preferential occupation of Li at interstitial spaces and lutetium sites is proven to rely on its codoping concentration by using the Li nuclear magnetic resonance technique. The concentration-dependent site occupancy of Li alters the defect structures of LSO:Ce, in particular resulting in a distinct change in the number of cerium spatially correlated oxygen vacancies confirmed by thermoluminescence and afterglow measurements.
锂共掺杂已成为提高氧化物闪烁体辐射探测应用的光产率的有效策略,但对锂实际作用的理解仍不清楚。在这项工作中,我们全面研究了锂共掺杂对 LuSiO:Ce(LSO:Ce)单晶光学和闪烁性能的影响,揭示了锂占位的关键作用。采用提拉法生长了掺有 0.05、0.1 和 0.3 原子% Li 离子的高质量 LSO:Ce 单晶。光学吸收光谱证实,无论 Li 共掺杂浓度如何,稳定的 Ce 都不会转化为 Ce。光致发光衰减动力学表明,在高度共掺杂的样品中,Ce 中心的激发 5d 态的离化增强。在低浓度 Li 共掺杂的 LSO:Ce 中,实现了闪烁光产率、衰减时间和余辉的同时提高。通过 Li 核磁共振技术证明,Li 优先占据间隙和镥位取决于其共掺杂浓度。Li 的浓度依赖性占位改变了 LSO:Ce 的缺陷结构,特别是通过热发光和余辉测量证实了铈空间相关氧空位数量的明显变化。