Overcoming Thermal Quenching in X‐ray Scintillators through Multi‐Excited State Switching

Author:

Wang Min1,Zhang Zhongbo2,Lyu Jing1,Qiu Jian13,Gu Chang13,Zhao He13,Wang Tao1,Ren Yiwen4,Yang Shuo‐Wang5,Qin Xu Guo16,Liu Xiaogang136ORCID

Affiliation:

1. Department of Chemistry National University of Singapore 117543 Singapore Singapore

2. School of Chemistry Chemical Engineering and Biotechnology Nanyang Technological University 637459 Singapore Singapore

3. International Campus of Tianjin University Joint School of National University of Singapore and Tianjin University 350207 Fuzhou China

4. Institute of Landscape Architecture Zhejiang University 310058 Hangzhou China

5. Institute of High-Performance Computing Agency for Science, Technology and Research 138632 Singapore Singapore

6. Center for Functional Materials National University of Singapore Suzhou Research Institute 215123 Suzhou China

Abstract

AbstractX‐ray scintillators have gained significant attention in medical diagnostics and industrial applications. Despite their widespread utility, scintillator development faces a significant hurdle when exposed to elevated temperatures, as it usually results in reduced scintillation efficiency and diminished luminescence output. Here we report a molecular design strategy based on a hybrid perovskite (TpyBiCl5) that overcomes thermal quenching through multi‐excited state switching. The structure of perovskite provides a platform to modulate the luminescence centers. The rigid framework constructed by this perovskite structure stabilized its triplet states, resulting in TpyBiCl5 exhibiting an approximately 12 times higher (45 % vs. 3.8 %) photoluminescence quantum yield of room temperature phosphorescence than that of its organic ligand (Tpy). Most importantly, the interactions between the components of this perovskite enable the mixing of different excited states, which has been revealed by experimental and theoretical investigations. The TpyBiCl5 scintillator exhibits a detection limit of 38.92 nGy s−1 at 213 K and a detection limit of 196.31 nGy s−1 at 353 K through scintillation mode switching between thermally activated delayed fluorescence and phosphorescence. This work opens up the possibility of solving the thermal quenching in X‐ray scintillators by tuning different excited states.

Funder

National Research Foundation Singapore

Publisher

Wiley

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