超材料
圆二色性
材料科学
振动圆二色性
光学
纳米技术
光电子学
结晶学
物理
化学
作者
Qiang Chen,Yawei Wu,Yongzhi She,Yilong Zhao,Jinlong Yang,Lijuan Chen,Peiwu Liu,Min Wu,Changgan Zeng,Zeming Qi,Chuansheng Hu,Hengjie Liu,Yujie Xiong,Yangchao Tian,Yang Chen,Hongbing Cai,Nan Pan,Xiaoping Wang
标识
DOI:10.1002/adom.202400593
摘要
Abstract Chiral metamaterials possess unique optical chiral responses, and the attainment of remarkable intrinsic chirality typically necessitates the disruption of their mirror symmetry to facilitate cross‐coupling between electric and magnetic dipoles. However, achieving such symmetry breaking in a flexible and controllable manner remains challenging due to the limited range of applications afforded by available methodologies. Here, a method is proposed for fabricating robust three‐dimensional (3D) chiral metamaterials by projecting arbitrary planar chiral metasurfaces onto on‐demand height‐tunable 3D silicon structures, thereby effectively modulating their optical chiral responses through continuously tuning the degree of cross‐coupling between dipoles. Experimental and simulation results demonstrate this approach's ability to precisely control circular dichroism (CD) from a non‐chiral state to various activated and enhanced chirality. Enhancing CD with high precision and continuous control manners can naturally provide an advanced opportunity and platform for the future design and actual applications of chiral optical systems.
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