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有机-无机卤化物钙钛矿光电探测器综述:器件工程与基础物理。

A Review on Organic-Inorganic Halide Perovskite Photodetectors: Device Engineering and Fundamental Physics.

机构信息

Joint Institute for Advanced Materials, Department of Materials Science and Engineering, University of Tennessee, Knoxville, 37996, USA.

College of Science, Beijing Jiaotong University, Beijing, 100044, China.

出版信息

Adv Mater. 2017 Nov;29(41). doi: 10.1002/adma.201605242. Epub 2017 Sep 14.

Abstract

The last eight years (2009-2017) have seen an explosive growth of interest in organic-inorganic halide perovskites in the research communities of photovoltaics and light-emitting diodes. In addition, recent advancements have demonstrated that this type of perovskite has a great potential in the technology of light-signal detection with a comparable performance to commercially available crystalline Si and III-V photodetectors. The contemporary growth of state-of-the-art multifunctional perovskites in the field of light-signal detection has benefited from its outstanding intrinsic optoelectronic properties, including photoinduced polarization, high drift mobilities, and effective charge collection, which are excellent for this application. Photoactive perovskite semiconductors combine effective light absorption, allowing detection of a wide range of electromagnetic waves from ultraviolet and visible, to the near-infrared region, with low-cost solution processability and good photon yield. This class of semiconductor might empower breakthrough photodetector technology in the field of imaging, optical communications, and biomedical sensing. Therefore, here, the focus is specifically on the critical understanding of materials synthesis, design, and engineering for the next-stage development of perovskite photodetectors and highlighting the current challenges in the field, which need to be further studied in the future.

摘要

过去八年(2009-2017 年),在光伏和发光二极管研究领域,人们对有机-无机卤化物钙钛矿的兴趣呈爆炸式增长。此外,最近的进展表明,这种类型的钙钛矿在光信号检测技术方面具有很大的潜力,其性能可与市售的晶体硅和 III-V 光电探测器相媲美。在光信号检测领域,最先进的多功能钙钛矿的当代发展受益于其出色的固有光电特性,包括光致极化、高漂移迁移率和有效的电荷收集,这非常适合这种应用。光活性钙钛矿半导体结合了有效的光吸收,允许检测从紫外线和可见光到近红外区域的广泛电磁波,具有低成本的溶液处理和良好的光子产率。这类半导体可能为成像、光通信和生物医学传感领域的突破性光电探测器技术提供支持。因此,这里特别关注的是对钙钛矿光电探测器下一阶段发展的材料合成、设计和工程的关键理解,并强调了该领域当前面临的挑战,这些挑战需要在未来进一步研究。

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