材料科学
钙钛矿(结构)
探测器
辐射
分辨率(逻辑)
网格
光电子学
光学
工程物理
纳米技术
化学工程
计算机科学
人工智能
物理
几何学
数学
工程类
作者
Haoming Qin,Nan‐Nan Shen,Bao Xiao,Xuchang He,Yuquan Wang,Qihao Sun,Shuquan Wei,Xiao Ouyang,Boru Zhou,Zhou Wu,Qi Min,Ruohan Ren,Ning Ding,Wenjie Chen,Xinxin Wang,Zhifang Chai,Xiaoping Ouyang,Yihui He
标识
DOI:10.1002/adfm.202509390
摘要
Abstract Semiconductor detectors function as solid‐state ionization chambers, operating on principles similar to those of gas ionization chambers. In a gas ionization chamber, the internal grid structure is a critical regulator in providing electrical shielding and facilitating event‐trajectory reconstruction. However, grid structure has yet to be implemented into state‐of‐art semiconductor detectors. Herein, the conceptual design and operation principle of a solid Frisch grid (SFG) detector is presented with an internal grid structure, alongside a universal strategy for its fabrication utilizing solution‐processed perovskite semiconductors. Spectroscopic‐grade SFG perovskite single crystals with smooth surfaces, showcasing atomic‐level growth terraces, are grown through bulk defects passivation with additive. SFG detector exhibits desirable weighting potential with a low grid inefficiency of ≈17.1%, delivering an impressive raw energy resolution of 2.0% at 662 keV, surpassing that of conventional detectors without a Frisch grid. By incorporating depth analysis, the energy resolution is further enhanced to an unprecedented 1.65%. A multiple‐wire SFG detector has also been developed, capable of spatially reconstructing the γ‐ray interaction events and achieving a record 40.0 µm position resolution. With the significantly higher attenuation efficiency of SFG perovskite detector, which is four orders of magnitude greater than that of gas detector, this study is anticipated to pave the avenue for integrating grid structures with versatile functionality into new‐generation semiconductor radiation detectors.
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