Realization of a three-dimensional photonic higher-order topological insulator

被引:0
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作者
Ziyao Wang [1 ]
Yan Meng [2 ]
Bei Yan [3 ]
Dong Zhao [1 ]
Linyun Yang [4 ]
Jingming Chen [1 ]
Minqi Cheng [1 ]
Tao Xiao [1 ]
Perry Ping Shum [1 ]
Gui-Geng Liu [5 ]
Yihao Yang [6 ]
Hongsheng Chen [6 ]
Xiang Xi [2 ]
Zhen-Xiao Zhu [1 ]
Biye Xie [7 ]
Zhen Gao [1 ]
机构
[1] Southern University of Science and Technology,State Key Laboratory of Optical Fiber and Cable Manufacture Technology, Department of Electronic and Electrical Engineering, Guangdong Key Laboratory of Integrated Optoelectronics Intellisense
[2] Dongguan University of Technology,School of Electrical Engineering and Intelligentization
[3] Wuhan University of Science and Technology,Hubei Province Key Laboratory of Systems Science in Metallurgical Process, and College of Science
[4] Chongqing University,College of Aerospace Engineering
[5] Westlake University,Research Center for Industries of the Future, Department of Electronic and Information Engineering, School of Engineering
[6] Zhejiang University,Interdisciplinary Center for Quantum Information, State Key Laboratory of Modern Optical Instrumentation, ZJU
[7] The Chinese University of Hong Kong,Hangzhou Global Science and Technology Innovation Center, College of Information Science and Electronic Engineering, ZJU
关键词
D O I
10.1038/s41467-025-58051-7
中图分类号
学科分类号
摘要
The discovery of photonic higher-order topological insulators (HOTIs) has expanded our understanding of band topology, offering robust lower-dimensional boundary states for photonic devices. However, realizing three-dimensional (3D) photonic HOTIs remains challenging due to the vectorial and leaky nature of electromagnetic waves. Here, we present the experimental realization of a 3D Wannier-type photonic HOTI using a tight-binding-like metal-cage photonic crystal, whose band structures align with a 3D tight-binding model via confined Mie resonances. Microwave near-field measurements reveal coexisting topological surface, hinge, and corner states in a single 3D photonic HOTI, consistent with theoretical predictions. Remarkably, these states are robust and self-guided even within the light cone continuum, functioning without ancillary cladding. This work paves the way for multi-dimensional manipulation of electromagnetic waves on 3D cladding-free photonic bandgap materials, enabling practical applications in 3D topological integrated photonic devices.
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