材料科学
卤化物
电离辐射
光电探测器
桥接(联网)
光电子学
钙钛矿(结构)
辐射
光学材料
单晶
光学
辐照
无机化学
结晶学
物理
计算机科学
核磁共振
核物理学
化学
计算机网络
作者
Zhengxun Lai,Yi Shen,He Shao,You Meng,Johnny C. Ho
标识
DOI:10.1002/adom.202501562
摘要
Abstract Halide perovskite large single crystals (HPLSCs, with millimeter‐scale dimensions) are promising materials for photodetection, effectively bridging optical and ionizing radiation regimes with superior optoelectronic properties. This review explores recent advancements in HPLSC‐based photodetectors, emphasizing synthesis methods, device architectures, and performance enhancements. Techniques like temperature‐lowering crystallization, inverse‐temperature crystallization, and antisolvent vapor‐assisted crystallization produce high‐quality HPLSCs with minimal defects, extended carrier diffusion, and improved storage stability. These crystals excel across spectral domains: visible detectors achieve responsivities over 100 A W −1 , UV devices offer microsecond response speeds, and infrared detectors utilize defect engineering for broadband sensitivity. In ionizing radiation detection, HPLSCs perform well due to high atomic number constituents and substantial thickness, yielding X‐ray sensitivities above 10 5 µC Gy air −1 cm −2 and γ‐ray energy resolutions comparable to commercial detectors. Lead‐free alternatives address toxicity concerns while maintaining efficacy. Future research is expected to focus on hybrid growth techniques, AI‐driven material discovery, and integrated multispectral imaging, highlighting HPLSCs' potential in medical imaging, environmental monitoring, and aerospace applications.
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