手性(物理)
材料科学
钙钛矿(结构)
发光
纳米晶
圆二色性
光子学
圆极化
化学物理
超分子手性
纳米技术
光电子学
对称性破坏
结晶学
光学
晶体结构
超分子化学
手征对称破缺
化学
物理
量子力学
Nambu–Jona Lasinio模型
微带线
作者
Qinxuan Cao,Ruyi Song,Christopher C. S. Chan,Zhiyu Wang,Pui Ying Wong,Kam Sing Wong,Volker Blüm,Haipeng Lu
标识
DOI:10.1002/adom.202203125
摘要
Abstract Chiral perovskite nanocrystals have emerged as an interesting chiral excitonic platform that combines both structural flexibility and superior optoelectronic properties. Despite several recent demonstrations of optical activity in various chiral perovskite nanocrystals, efficient circularly polarized luminescence (CPL) with tunable energies remains a challenge. The chirality imprinting mechanism as a function of perovskite nanocrystal dimensionality remains elusive. Here, atomically thin inorganic perovskite nanoplatelets (NPLs) are synthesized with precise control of layer thickness and are functionalized by chiral surface ligands, serving as a unique platform to probe the chirality transfer mechanism at the organic/perovskite interface. It is found that chirality is successfully imprinted into mono‐, bi‐, and tri‐layer inorganic perovskite NPLs, exhibiting tunable circular dichroism (CD) and CPL responses. However, chirality transfer decreases in thicker NPLs, resulting in decreased CD and CPL dissymmetry factors for thicker NPLs. Aided by large‐scale first‐principles calculations, it is proposed that chirality transfer is mainly mediated through a surface distortion rather than a hybridization of electronic states, giving rise to symmetry breaking in the perovskite lattice and spin‐split conduction bands. The findings described here provide an in‐depth understanding of chirality transfer and design principles for distorted‐surface perovskites for chiral photonic applications.
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