Shen Yue, Ran Chenxin, Dong Xue, Wu Zhongbin, Huang Wei
Frontiers Science Center for Flexible Electronics, Xi'an Institute of Flexible Electronics (IFE) and Xi'an Institute of Biomedical Materials & Engineering, Northwestern Polytechnical University, 127 West Youyi Road, Xi'an, 710072, China.
Technological Institute of Materials & Energy Science (TIMES), Xijing University, Xi'an, 710123, China.
Small. 2024 Apr;20(16):e2308242. doi: 10.1002/smll.202308242. Epub 2023 Nov 28.
The next-generation X-ray detectors require novel semiconductors with low material/fabrication cost, excellent X-ray response characteristics, and robust operational stability. The family of organic-inorganic hybrid perovskites (OIHPs) materials comprises a range of crystal configuration (i.e., films, wafers, and single crystals) with tunable chemical composition, structures, and electronic properties, which can perfectly meet the multiple-stringent requirements of high-energy radiation detection, making them emerging as the cutting-edge candidate for next-generation X-ray detectors. From the perspective of molecular dimensionality, the physicochemical and optoelectronic characteristics of OIHPs exhibit dimensionality-dependent behavior, and thus the structural dimensionality is recognized as the key factor that determines the device performance of OIHPs-based X-ray detectors. Nevertheless, the correlation between dimensionality of OIHPs and performance of their X-ray detectors is still short of theoretical guidance, which become a bottleneck that impedes the development of efficient X-ray detectors. In the review, the advanced studies on the dimensionality engineering of OIHPs are critically assessed in X-ray detection application, discussing the current understanding on the "dimensionality-property" relationship of OIHPs and the state-of-the-art progresses on the dimensionality-engineered OIHPs-based X-ray detector, and highlight the open challenges and future outlook of this field.
下一代X射线探测器需要具有低材料/制造成本、优异的X射线响应特性和强大的运行稳定性的新型半导体。有机-无机杂化钙钛矿(OIHPs)材料家族包括一系列具有可调化学成分、结构和电子特性的晶体构型(即薄膜、晶片和单晶),这可以完美满足高能辐射探测的多项严格要求,使其成为下一代X射线探测器的前沿候选材料。从分子维度的角度来看,OIHPs的物理化学和光电特性呈现出维度依赖性行为,因此结构维度被认为是决定基于OIHPs的X射线探测器器件性能的关键因素。然而,OIHPs的维度与其X射线探测器性能之间的相关性仍然缺乏理论指导,这成为阻碍高效X射线探测器发展的一个瓶颈。在这篇综述中,对OIHPs维度工程在X射线探测应用中的前沿研究进行了批判性评估,讨论了目前对OIHPs“维度-性能”关系的理解以及基于维度工程的OIHPs的X射线探测器的最新进展,并突出了该领域的开放挑战和未来展望。