In Situ Eu Redox in Cs <sub>3</sub> YCl <sub>6</sub> Enabling Colorful Scintillators for Multicolor Radiography and Real‐Time Dosimetry
Abstract
ABSTRACT Colorful scintillators with multilayer structures have attracted considerable attention for advanced radiography, but their layered architectures suffer from intrinsic interlayer excitation and photon crosstalk problems. Here, we design and report a single‐phased Cs 3 YCl 6 :Eu 3+ scintillator with tunable blue/red emissions via in situ x‐ray‐induced Eu 3+ reduction. Partial transient reduction of Eu 3+ with 4f→4f transition to Eu 2+ with 5d→4f transition in Cs 3 YCl 6 is attributed to low‐lying defect states, confirmed by thermoluminescence and density functional theory calculations. Thanks to multicolor characteristics, the colorful Cs 3 YCl 6 :Eu 3+ scintillator achieves x‐ray dose real‐time dosimetry within the range from 0.068 to 3.387 mGy, with a maximum relative sensitivity of 233.9% mGy − 1 . Furthermore, it exhibits multicolor x‐ray imaging with a resolution of 10 lp mm −1 , allowing simultaneous material discrimination and x‐ray dose dosimetry. This work provides a new design principle for the innovation of colorful scintillators and high‐precision multicolor x‐ray detection technologies.
Article Details
Authors (7)
Yongqi Zhao
Chenliang Li
State Key Laboratory of Luminescent Materials and Devices Guangdong Provincial Key Laboratory of Fiber Laser Materials and Applied Techniques School of Physics and Optoelectronics South China University of Technology Guangzhou China
Lihan Chen
College of Computer and Data Science
Baoling Tang
School of Materials Science and Engineering South China University of Technology Guangzhou China
Yutong Hu
Kai Han
Key Laboratory of Medical Molecule Science and Pharmaceutics Engineering, Ministry of Industry and Information Technology, School of Chemistry and Chemical Engineering, Center for Quantum Technology Research and School of Physics
Zhiguo Xia
State Key Laboratory of Luminescent Materials and Devices, Guangdong Provincial Key Laboratory of Fiber Laser Materials and Applied Techniques, School of Physics and Optoelectronics