超材料
材料科学
电磁场
极化(电化学)
对称(几何)
自由空间
解耦(概率)
物理
热的
光学
对称性破坏
拓扑(电路)
参数空间
吸收(声学)
透射率
理论物理学
电磁辐射
点反射
点(几何)
经典力学
电磁干扰
电磁兼容性
超材料吸收剂
光电子学
局部对称性
简并能级
圆对称性
计算机科学
领域(数学)
概念证明
电磁屏蔽
复合数
干扰(通信)
作者
Weijia Luo,Runni Zhao,Y. Liu,Xiaojian Fu,Quanlong Yang,Siyong Zheng,Yuanfeng Liu,Peizheng Cao,Yongzheng Wen,Jingbo Sun,Ji Zhou
标识
DOI:10.1002/adma.202522888
摘要
ABSTRACT Metamaterials enable the reconstruction of physical field properties through controlled local symmetry breaking, thereby challenging conventional paradigms in physics. Nevertheless, realizing such symmetry manipulation often requires intricate composite structures to satisfy specific symmetry conditions, which unavoidably compromises reliability under extreme environmental conditions. Here, inspired by the generalized Kerker effect, we introduce singular points within a desymmetrized all‐ceramic metamaterial to relax these constraints. In this design, inversion symmetry breaking is confined to a single structural element, and the thermal tolerance is determined solely by the intrinsic melting point of the ceramic. Specifically, a variable blind‐hole geometry patterned on ceramic plates is employed to establish D 4v symmetry, enabling precise manipulation of odd and even modes and their mutual interference under the theoretical framework of bound state in the continuum (BIC). This mechanism generates a singular mode that suppresses both forward and backward scattering, yielding near‐lateral electromagnetic wave propagation and externally near‐perfect absorption. Furthermore, the intrinsic self‐supporting nature and near‐field polarization sensitivity of this architecture significantly enhance its application potential. By decoupling generalized Kerker effects from strict symmetry requirements, this flexible strategy expands the design space for functional metamaterials, thereby promoting the development of advanced devices with unique electromagnetic properties.
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