超单元
散射
极化(电化学)
材料科学
拓扑(电路)
电介质
波前
同质性(统计学)
电场
格子(音乐)
超材料
凝聚态物理
光学
物理
光电子学
计算机科学
量子力学
雷雨
化学
数学
物理化学
组合数学
机器学习
气象学
声学
作者
Mingfeng Xu,Qiong He,Mingbo Pu,Fei Zhang,Ling Li,Di Sang,Yinghui Guo,Renyan Zhang,Xiong Li,Xiaoliang Ma,Xiangang Luo
标识
DOI:10.1002/adma.202108709
摘要
Abstract Recently, disordered metasurfaces have attracted considerable interest due to their potential applications in imaging, holography, and wavefront shaping. However, how to emerge long‐range ordered phase distribution in disordered metasurfaces remains an outstanding problem. Here, a general framework is proposed to generate a spatially homogeneous in‐plane phase distribution from a disordered metasurface, by engineering disorder parameters together with topology optimization. As a proof‐of‐concept demonstration, an all‐dielectric disordered supercell metasurface with relatively homogeneous in‐plane phase fluctuation is designed by disorder parameter engineering, manifesting as polarization conversion‐dependent random scattering or unidirectional transmission. Then, a topology optimization approach is utilized to overcome the lattice coupling effect and to further improve the homogeneity of complex electric field fluctuation. In comparison with the initial supercell metasurface, both the phase fluctuation range and the relative efficiency of the topology‐optimized freeform metasurface are significantly improved, leading to a long‐range ordered electric field distribution. Moreover, three experimental realizations are performed, all of which agree well with the theoretical results. This methodology may inspire more exotic optical phenomena and find more promising applications in disordered metasurfaces and disordered optics.
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