物理
石墨烯
对称(几何)
Dirac(视频压缩格式)
朗道量子化
曲面(拓扑)
量子力学
量具(枪械)
对称性破坏
迪拉克费米子
规范理论
微波食品加热
光子学
拓扑缺陷
手征对称性
螺旋狄拉克费米子
超材料
领域(数学)
光子晶体
波长
灵活性(工程)
拓扑(电路)
自发对称破缺
狄拉克方程
规范对称性
电磁场
电磁辐射
理论物理学
经典力学
朗道阻尼
狄拉克海
平移对称性
作者
Yi Yuan,Yikai Xu,Liang Zhao,Qiong He,Shulin Sun,Shaojie Ma,Lei Zhou
摘要
Dirac points, arising from intrinsic space-group symmetry in hexagonal lattices, have been extensively explored in graphene and photonic crystals. However, their characteristic scales, confined either to atomic level (∼Å) or limited by the operational wavelength (∼λ), pose fundamental challenges for precisely engineering their topological properties and thus freely controlling the wave-transport behaviors in such systems. Here, beyond the conventional lattice-dependent paradigm, we demonstrate a type-I photonic Dirac point in the surface modes of an electromagnetic metasurface. This realization, governed by the intrinsic properties of constitutional units rather than the global crystalline symmetry, enables us to control Dirac physics in deep-subwavelength scales. Owing to the vanishing density of states at the type-I Dirac degeneracy, by strategically integrating inhomogeneous local symmetry breaking as an artificial gauge field, we experimentally observe supersymmetric Landau levels and chiral zero modes with deep-subwavelength precision in the microwave regime. Such a platform offers a branch-new approach to freely control surface waves through precisely engineering the spatial distribution of the gauge field imposed, with bending, focusing, and spreading of surface waves experimentally demonstrated. By harnessing the mode-tuning flexibility of metasurfaces, our Letter establishes a versatile platform for topology-driven optical manipulation.
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