Parity‐Frequency‐Space Elastic Spin Control of Wave Routing in Topological Phononic Circuits

Author:

Huang Yao1,Yang Chenwen2,Yuan Weitao3,Zhang Yuxuan1,Pan Yongdong1,Yang Fan1,Zhong Zheng4,Zhao Jinfeng1ORCID,Wright Oliver B.56ORCID,Ren Jie2

Affiliation:

1. School of Aerospace Engineering and Applied Mechanics Tongji University 100 Zhangwu Road Shanghai 200092 P. R. China

2. Center for Phononics and Thermal Energy Science China‐EU Joint Lab on Nanophononics Shanghai Key Laboratory of Special Artificial Microstructure Materials and Technology School of Physics Science and Engineering Tongji University Shanghai 200092 P. R. China

3. Applied Mechanics and Structure Safety Key Laboratory of Sichuan Province School of Mechanics and Aerospace Engineering Southwest Jiaotong University Chengdu Sichuan 610031 P. R. China

4. School of Science Harbin Institute of Technology Shenzhen 518055 P. R. China

5. Graduate School of Engineering Osaka University Yamadaoka 2‐1 Suita Osaka 565‐0871 Japan

6. Hokkaido University Sapporo Hokkaido 060‐0808 Japan

Abstract

AbstractTopological phononic cavities, such as ring resonators with topological whispering gallery modes (TWGMs), offer a flexible platform for the realization of robust phononic circuits. However, the chiral mechanism governing TWGMs and their selective routing in integrated phononic circuits remain unclear. This work reveals, both experimentally and theoretically, that at a phononic topological interface, the elastic spin texture is intricately linked to, and can be explained through a knowledge of, the phonon eigenmodes inside each unit cell. Furthermore, for paired, counterpropagating TWGMs based on such interfaces in a waveguide resonator, this study demonstrates that the elastic spin exhibits locking at discrete frequencies. Backed up by theory, experiments on kHz TWGMs in thin honeycomb‐lattice aluminum plates bored with clover‐leaf shaped holes show that together with this spin‐texture related angular‐momentum locking mechanism at a single topological interface, there are triplicate parity‐frequency‐space selective wave routing mechanisms. In the future, these mechanisms can be harnessed for the versatile manipulation of elastic‐spin based routing in phononic topological insulators.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Shanghai Municipality

National Key Research and Development Program of China

Publisher

Wiley

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