圆二色性
光子学
圆极化
点反射
超材料
非线性系统
非线性光学
纳米光子学
极化(电化学)
光子晶体
对称(几何)
纳米技术
材料科学
物理
平移对称性
可扩展性
等离子体子
对称性破坏
反向
局部对称性
设计要素和原则
振幅
手性(物理)
不对称
理论物理学
参数空间
透视图(图形)
光学
二色性
光子超材料
计算机科学
格子(音乐)
拓扑(电路)
宽带
结构刚度
耦合模理论
非线性光学
作者
Ran Chen,Sen Jiang,Xudong Zhang,Wenhan Yang,Zhaohui Xie,Yuexin Lin,Yingjie Zhu,Jin Liu,Wenjing Zhu,Wenye Jiang,Suzhen Liu,Binglan Xiong,Yihan Yan,Bo Cai,Zhiyuan Gu,Shengchun Yang,Nan Zhang,Chao Liang
摘要
Chiral metasurfaces provide a powerful artificial platform for manipulating the spin, phase, and amplitude of light at the subwavelength scale. The ability to generate strong circular dichroism (CD), optical activity, and spin-selective light-matter interaction creates new opportunities in chiral sensing, emission, and nonlinear photonics within flat optics. However, navigating the vast and complex geometric parameter space to maximize chiroptical responses remains a formidable challenge. To address this problem, we categorize the core design principles from the perspective of symmetry breaking including in-plane symmetry breaking, out-of-plane symmetry breaking, and low-symmetry lattice engineering. Furthermore, this review highlights the transformative role of machine learning and inverse design in overcoming the computational bottlenecks of traditional heuristic optimizations. We then review the practical applications of these chiral platforms across both linear and nonlinear regimes, focusing on imaging and holography, chiral sensing and polarization detection, circularly polarized light (CPL) emission, and advanced nonlinear chiral functionalities. Finally, major challenges and future research directions are outlined to guide the rational design and scalable implementation of chiral metasurfaces in next-generation photonic systems.
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