准零维卤化物钙钛矿衍生物:合成、现状和机遇

IF 1.9 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
V. Trifiletti, Ceyla Asker, G. Tseberlidis, S. Riva, K. Zhao, Weidong Tang, S. Binetti, O. Fenwick
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引用次数: 4

摘要

近几十年来,许多技术进步都是由纳米级现象实现的,从而产生了纳米技术领域。特别是,独特的光学和电子现象发生在小于10纳米的长度尺度上,这使得新的应用成为可能。卤化物钙钛矿一直是其光电性能研究的焦点,并在光伏器件和后来的其他光电技术(如激光器和发光二极管)中展示了令人印象深刻的性能。研究最多的晶体形式是三维的,但是,最近,对低维衍生物的探索使得新的子类卤化物钙钛矿材料具有不同的性能。在这些材料中,负责电子性能的低维金属卤化物结构被(通常是有机的)阳离子分开并相互部分绝缘。约束发生在晶格水平上,使块状或薄膜材料保持一定程度的低维特性。特别是,准零维钙钛矿衍生物被证明具有独特的电子、吸收和光致发光性质。他们正在探索光电以外的各种技术(如热电、激光、光电探测器、忆阻器、电容器、led)。本综述以跨学科的方式汇集了这些零维材料的最新文献,可以促进这些化合物的应用。本文涵盖了合成方法、电学、光学和化学性质、应用进展以及作为未来电子器件候选者需要克服的挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Quasi-Zero Dimensional Halide Perovskite Derivates: Synthesis, Status, and Opportunity
In recent decades, many technological advances have been enabled by nanoscale phenomena, giving rise to the field of nanotechnology. In particular, unique optical and electronic phenomena occur on length scales less than 10 nanometres, which enable novel applications. Halide perovskites have been the focus of intense research on their optoelectronic properties and have demonstrated impressive performance in photovoltaic devices and later in other optoelectronic technologies, such as lasers and light-emitting diodes. The most studied crystalline form is the three-dimensional one, but, recently, the exploration of the low-dimensional derivatives has enabled new sub-classes of halide perovskite materials to emerge with distinct properties. In these materials, low-dimensional metal halide structures responsible for the electronic properties are separated and partially insulated from one another by the (typically organic) cations. Confinement occurs on a crystal lattice level, enabling bulk or thin-film materials that retain a degree of low-dimensional character. In particular, quasi-zero dimensional perovskite derivatives are proving to have distinct electronic, absorption, and photoluminescence properties. They are being explored for various technologies beyond photovoltaics (e.g. thermoelectrics, lasing, photodetectors, memristors, capacitors, LEDs). This review brings together the recent literature on these zero-dimensional materials in an interdisciplinary way that can spur applications for these compounds. The synthesis methods, the electrical, optical, and chemical properties, the advances in applications, and the challenges that need to be overcome as candidates for future electronic devices have been covered.
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