Energy‐Efficient Integrated Photonic Topological Devices

Author:

Zhang Zijian1234,Liao Dashuang1234,Li Yuanzhen1234,Xie Xinrong1234,Yang Yumeng1234,Wang Kai1234,Dong Zhaozhen1234,Li Erping1234,Chen Hongsheng1234ORCID,Gao Fei1234ORCID

Affiliation:

1. State Key Laboratory of Extreme Photonics and Instrumentation ZJU‐Hangzhou Global Scientific and Technological Innovation Center Zhejiang University Hangzhou 310027 China

2. International Joint Innovation Center The Electromagnetics Academy at Zhejiang University Zhejiang University Haining 314400 China

3. Key Laboratory of Advanced Micro/Nano Electronic Devices & Smart Systems of Zhejiang Jinhua Institute of Zhejiang University Zhejiang University Jinhua 321099 China

4. Shaoxing Institute of Zhejiang University Zhejiang University Shaoxing 312000 China

Abstract

AbstractTopological photonics is revolutionizing the integrated electromagnetic devices, on account of the robust mode propagations immune to structural defects and sharp bends. Such robust modes have spawned attractive devices known as photonic topological waveguides (PTW), especially implemented on compact photonic‐crystal platforms. However, these exotic waveguides are challenging to be high‐efficiently interconnected with conventional integrated photonic devices. To tackle this challenge, a general energy‐efficient strategy for topological photonic structures is proposed. Such strategy is implemented onto three types of typical PTWs, which extract electromagnetic energy high efficiently from standard single‐mode rectangular waveguides. Moreover, the results of dual‐polarization valley PTW proves the polarization‐independence of their strategy. The measured near‐perfect excitation efficiencies are stable across the whole operational band of topological waveguides, thus verifying the frequency independence of this strategy. By utilizing this energy‐efficient strategy, an integrated topological high‐gain antenna, which achieves the peak directive gain of 20.25 dBi and half power beam width of 5.23° at 60 GHz, is realized. This strategy on energy‐efficient design is general to be applicable on other types of topological photonic platforms and paves the way for applications of topological electromagnetic devices.

Funder

National Natural Science Foundation of China

Key Research and Development Program of Zhejiang Province

Publisher

Wiley

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