Transparent Glass Composite Scintillator with High Crystallinity for Efficient Thermal Neutron Detection

Author:

Wang Dazhao1,Zhang Shiyu2,Chen Jingfei1,Tu Degui1,Lv Shichao1,Wei Zheng2,Tang Bin34,Sun Zhijia34,Qiu Jianrong5,Zhou Shifeng1ORCID

Affiliation:

1. State Key Laboratory of Luminescent Materials and Devices School of Materials Science and Engineering Guangdong Engineering Technology Research Center of Special Optical Fiber Materials and Devices Guangdong Provincial Key Laboratory of Fiber Laser Materials and Applied Techniques South China University of Technology Guangzhou 510640 China

2. School of Nuclear Science and Technology Lanzhou University Lanzhou 730000 China

3. Institute of High Energy Physics Chinese Academy of Sciences (CAS) Beijing 100049 China

4. Spallation Neutron Source Science Center (SNSSC) Dongguan 523803 China

5. College of Optical Science and Engineering State Key Laboratory of Modern Optical Instrumentation Zhejiang University Hangzhou 310027 China

Abstract

AbstractThe sensitive and rapid detection of thermal neutrons holds significant importance in various fields such as energy utilization, medical treatment, and national defense. However, the available thermal neutron scintillator is difficult to reach this target, mainly limited by the optical and scintillating performance. Herein, the in situ crystallization strategy of glass to construct scintillation glass composites for efficient thermal neutron detection is proposed. The congruent crystallization of the hybridized alkali earth silicate glass system may not only achieve high crystallinity, but also will keep the refractive indexing matching between the precipitated crystal and precursor glass phases. The prepared glass composites feature high luminescence efficiency, optical transmission and excellent neutron response properties. These factors collectively contribute to the robust neutron scintillation performance with a light output of ≈36 000 photons/neutron, which represents the highest value among glass‐based scintillators. Moreover, the composite configuration brings about the additional function of thermal neutron and γ‐ray discrimination. By using this composite scintillator, the neutron detector is constructed and demonstrates its application for detecting thermal neutron and distinguishing it from γ‐ray in an online way. The studies prove that glass composites with high crystallinity are expected to be promising candidates for a new generation of multifunctional neutron detectors.

Publisher

Wiley

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