材料科学
自旋电子学
手性(物理)
纳米技术
光子学
钙钛矿(结构)
半导体
非线性光学
发光
圆二色性
光电子学
光学材料
光子晶体
圆极化
光通信
设计要素和原则
非线性光学
制作
Crystal(编程语言)
自旋(空气动力学)
作者
Xiaochen Fang,Qing Huang,Ronggan Lu,Yang Tang,Youjun Lu,Bo Zheng,Dongdong Yan,Zhanhui Yuan,Rubén Ahijado Guzmán,Weixiang Ye
出处
期刊:ACS Photonics
[American Chemical Society]
日期:2026-06-08
卷期号:13 (12): 3211-3237
被引量:3
标识
DOI:10.1021/acsphotonics.6c00614
摘要
Abstract In recent years, research on metal–halide perovskites have expanded rapidly, positioning these materials as highly promising semiconductors thanks to their remarkable optoelectronic properties. When chiral molecules are introduced into the crystal lattice, or when chiral ligands are attached to the surface, it becomes possible to obtain chiral metal–halide perovskites. These materials combine the excellent electronic and optical characteristics of conventional perovskites with intrinsic chirality, which gives rise to unique functionalities such as circular dichroism (CD), circularly polarized luminescence (CPL), nonlinear optical responses, spintronic behavior, ferroelectricity, and the chiral-induced spin selectivity (CISS) effect. As a result, these materials hold great promise for applications in optoelectronics, optical devices, photovoltaics, and spintronics. This review summarizes recent developments in chiral metal–halide perovskites, focusing on their synthesis strategies, crystal structures, mechanisms behind chirality induction, CPL behavior, and emerging applications. Building on these advances, the key challenges that currently limit their progress are discussed, together with possible directions for future research. A deeper understanding of the optoelectronic properties and design principles of chiral metal–halide perovskites is expected to provide valuable theoretical guidance and support the development of next-generation chiral perovskite materials.
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