铁电性
反平行(数学)
材料科学
凝聚态物理
手性(物理)
极地的
平移对称性
对称性破坏
相(物质)
对称(几何)
Crystal(编程语言)
曲面(拓扑)
点反射
液晶
多铁性
晶体结构
纳米技术
结晶学
二次谐波产生
镜像对称
化学物理
钙钛矿(结构)
作者
Zhi Yang,Yunlong Bai,Jiandong Yao,Yangding Qiu,Qihang Deng,Jie Wu,Guankui Long,Bingsuo Zou,Jia Hong Pan,Ruosheng Zeng
摘要
ABSTRACT According to Neumann's Principle, the chiral‐polar photovoltaic effect (CPPE) is restricted to crystals in one of the five chiral ferroelectric space groups—based on the assumption of perfect long‐range periodicity and bulk symmetry. However, this framework overlooks symmetry breaking at crystal boundaries. Herein, we report the emergence of surface ferroelectricity in a one‐dimensional chiral nonferroelectric perovskite, R / S ‐MPZSbBr 5 (MPZ = 2‐methylpiperazine), achieved through interlayer antiparallel alignment of polar Sb–Br chains. The bulk structure adopts a nonferroelectric phase with alternating polar domains, resulting in net‐zero polarization. Yet, at the (001) surface, the breaking of continuous translational symmetry gives rise to local ferroelectricity. This surface‐driven polarization, coupled with the intrinsic chirality of the crystal, enables a localized CPPE. Moreover, the synergy between surface ferroelectricity and pyro‐photovoltaic effects significantly enhances the performance of self‐powered circularly polarized light (CPL) detection. Our work reveals the limitations of Neumann's Principle at crystal interfaces and opens new avenues for engineering ferroelectricity and chiral optoelectronics in nonferroelectric systems.
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