铁电性
手性(物理)
材料科学
压电响应力显微镜
二次谐波产生
电场
极化(电化学)
纳米技术
光子学
旋涡
圆极化
涡流
光电子学
磁场
光学
物理
对称性破坏
化学
电介质
激光器
手征对称破缺
量子力学
Nambu–Jona Lasinio模型
物理化学
热力学
作者
Haojie Han,Lixuan Wei,Qinghua Zhang,Shiyu Tang,Yue Wang,Zongqi Xu,Yiqun Liu,Hetian Chen,Jingkun Gu,Jing Wang,Di Yi,Chen Xu,Houbing Huang,Ce‐Wen Nan,Qian Li,Jing Ma
标识
DOI:10.1002/adma.202408400
摘要
Abstract Manipulating optical chirality via electric fields has garnered considerable attention in the realm of both fundamental physics and practical applications. Chiral ferroelectrics, characterized by their inherent optical chirality and switchable spontaneous polarization, are emerging as a promising platform for electronic‐photonic integrated circuits applications. Unlike organics with chiral carbon centers, integrating chirality into technologically mature inorganic ferroelectrics has posed a long‐standing challenge. Here, the successful introduction of chirality is reported into self‐assembly La‐doped BiFeO 3 nanoislands, which exhibit ferroelectric vortex domains. By employing synergistic experimental techniques with piezoresponse force microscopy and nonlinear optical second‐harmonic generation probes, a clear correlation between chirality and polarization configuration within these ferroelectric nanoislands is established. Furthermore, the deterministic control of ferroelectric vortex domains and chirality is demonstrated by applying electric fields, enabling reversible and nonvolatile generation and elimination of optically chiral signals. These findings significantly expand the repertoire of field‐controllable chiral systems and lay the groundwork for the development of innovative ferroelectric optoelectronic devices.
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