He Xiaoyu, Deng Yao, Ouyang Decai, Zhang Na, Wang Jing, Murthy Akshay A, Spanopoulos Ioannis, Islam Saiful M, Tu Qing, Xing Guichuan, Li Yuan, Dravid Vinayak P, Zhai Tianyou
State Key Laboratory of Materials Processing and Die & Mould Technology, School of Materials Science and Engineering, Huazhong University of Science and Technology, Wuhan, Hubei430074, People's Republic of China.
Department of Materials Science and Engineering, Northwestern University Atomic and Nanoscale Characterization Experimental (NUANCE) Center, International Institute for Nanotechnology (IIN), and Department of Mechanical Engineering, Northwestern University, Evanston, Illinois60208, United States.
Chem Rev. 2023 Feb 2. doi: 10.1021/acs.chemrev.2c00404.
Ionizing radiation such as X-rays and γ-rays has been extensively studied and used in various fields such as medical imaging, radiographic nondestructive testing, nuclear defense, homeland security, and scientific research. Therefore, the detection of such high-energy radiation with high-sensitivity and low-cost-based materials and devices is highly important and desirable. Halide perovskites have emerged as promising candidates for radiation detection due to the large light absorption coefficient, large resistivity, low leakage current, high mobility, and simplicity in synthesis and processing as compared with commercial silicon (Si) and amorphous selenium (-Se). In this review, we provide an extensive overview of current progress in terms of materials development and corresponding device architectures for radiation detection. We discuss the properties of a plethora of reported compounds involving organic-inorganic hybrid, all-inorganic, all-organic perovskite and antiperovskite structures, as well as the continuous breakthroughs in device architectures, performance, and environmental stability. We focus on the critical advancements of the field in the past few years and we provide valuable insight for the development of next-generation materials and devices for radiation detection and imaging applications.
诸如X射线和γ射线之类的电离辐射已在医学成像、射线照相无损检测、核防御、国土安全和科学研究等各个领域得到广泛研究和应用。因此,利用基于高灵敏度和低成本的材料及设备来检测此类高能辐射非常重要且很有必要。卤化物钙钛矿已成为辐射检测的有前景的候选材料,因为与商用硅(Si)和非晶硒(-Se)相比,它具有大的光吸收系数、大的电阻率、低漏电流、高迁移率以及合成和加工简单等优点。在本综述中,我们广泛概述了在辐射检测的材料开发和相应器件架构方面的当前进展。我们讨论了大量已报道的涉及有机-无机杂化、全无机、全有机钙钛矿和反钙钛矿结构的化合物的性质,以及器件架构、性能和环境稳定性方面的持续突破。我们关注该领域在过去几年中的关键进展,并为开发用于辐射检测和成像应用的下一代材料和器件提供有价值的见解。