Enhanced Performance in Cesium Tellurium Chlorine by Hafnium Alloying for X‐Ray Computed Tomography Imaging

Author:

Lai Jun'an1,Wang Pengjiu2,Zheng Baofeng3,Xuan Tongtong4,Wu Daofu5,Wang Zixian6,Wang Yijia1,Zhang Wenxia6,Du Juan78,He Peng1,An Kang1,Tang Xiaosheng169ORCID

Affiliation:

1. Key Laboratory of Optoelectronic Technology & Systems (Ministry of Education) College of Optoelectronic Engineering Chongqing University Chongqing 400044 P. R. China

2. Qinghai Institute of Salt Lakes Chinese academy of sciences No.18 Xinning Avenue Xining Qinghai 810008 P. R. China

3. College of Chemical Engineering Shenyang University of Chemical Technology Shenyang 110142 P. R. China

4. Fujian Key Laboratory of Surface and Interface Engineering for High Performance Materials College of Materials Xiamen University Xiamen 361005 P. R. China

5. State Key Laboratory of Catalysis Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian 116023 P. R. China

6. College of Optoelectronic Engineering Chongqing University of Posts and Telecommunications Chongqing 400065 P. R. China

7. State Key Laboratory of High Field Laser Physics and CAS Center for Excellence in Ultra‐Intense Laser Science Shanghai Institute of Optics and Fine Mechanics Chinese Academy of Sciences Shanghai 201800 P. R. China

8. School of Physics and Optoelectronic Engineering Hangzhou Institute for Advanced Study University of Chinese Academy of Sciences Hangzhou 310024 P. R. China

9. School of Materials Science and Engineering Zhengzhou University Zhengzhou 450001 P. R. China

Abstract

AbstractThe term “light yield” (LY) refers to the ability of scintillator materials to convert high‐energy radiation into visible light. A higher LY corresponds to improved energy and spatial resolution in detectors. The enhancement of scintillator material performance is a crucial aspect of their development. In this study, the Cs2TeCl6 (CTC) double perovskite microcrystals is synthesized, and the broadband yellow emission shows a high degree of matching with the Charge‐coupled Device (CCD). However, the LY of CTC is poor for practical applications in X‐ray imaging. The scintillation performance is significantly enhanced through hafnium alloying. The LY increased from ≈4167 to 38 523 photons/MeV, and the detection limit decreased from 948 to 258 nGy s−1. The underlying mechanism of Te4+ ions emission is systematically explored through density function theory (DFT) analysis, along with investigations into pressure‐dependent photoluminescence, temperature‐dependent photoluminescence, and low‐temperature thermoluminescence. Furthermore, a flexible X‐ray scintillator screen with an outstanding high spatial resolution of 15.9 lp mm−1 is successfully fabricated. This work not only represents a substantial advancement in the scintillation performance of Te4+ ions emission double perovskite microcrystals but also provides an effective strategy for the development of the next generation of halide scintillators.

Funder

National Natural Science Foundation of China

State Key Laboratory of High Field Laser Physics

China Postdoctoral Science Foundation

Natural Science Foundation of Chongqing Municipality

Publisher

Wiley

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