发光
材料科学
手性(物理)
圆二色性
钙钛矿(结构)
发色团
磷光
光化学
圆极化
光电子学
配体(生物化学)
胺气处理
结晶学
手性配体
荧光
二极管
卤化物
化学物理
纳米晶
发光二极管
激子
不对称
咔唑
磁圆二色性
振动圆二色性
光学
轴手性
纳米技术
光通信
作者
Chengsi Zhao,Jinfeng Xie,Jun Liu,Hao Du,Shufen Zhang,Huiying Gao,He Huang,Ni Weihai,Qi Xue
标识
DOI:10.1002/adom.202503144
摘要
ABSTRACT Chiral lead halide perovskite nanocrystals (NCs) coherently integrate promising optical property with chirality, exhibiting great potential for next generation technologies across optoelectronics, asymmetric catalysis, chiral recognition, and 3D display technologies. However, the persistent challenges of weak optical activity and limited modulation methods in this material system severely hinder its practical implementation. Herein, a simple post‐treatment strategy is proposed for synthesizing chiral lead halide perovskite NCs with chiral amine ligands R/S‐3MPEA to modulate their optical properties and chiral characteristics. Experimental results demonstrate that the CsPbBr 3 NCs treated with chiral amine ligands R/S‐3MPEA display mirror‐symmetric circular dichroism (CD) signals at 495 nm for R/S‐3MPEA‐modified NCs, with luminescence asymmetry factor g lum reaching 0.64 × 10 −3 , unambiguously confirming their chiral nature. Furthermore, these NCs achieve exceptional optical performance in the visible spectrum, characterized by extended fluorescence lifetimes as a result of passivation. Additionally, the fabrication of light‐emitting diodes (LEDs) based on the chiral CsPbBr 3 NCs with a chromaticity coordinate of (0.1097, 0.7430) at 80 mA validates the practical application. This research provides additional experimental evidence for the synthesis of chiral perovskite NCs and establishes a foundation for their applications in optoelectronics, spintronics, and related fields.
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