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Parity-Frequency-Space Elastic Spin Control of Wave Routing in Topological Phononic Circuits. | LitMetric

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

Adv Sci (Weinh)

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.

Published: September 2024

AI Article Synopsis

  • - Topological phononic cavities, like ring resonators with topological whispering gallery modes (TWGMs), can create strong phononic circuits, but the chiral mechanisms that help these modes route signals effectively are not well understood.
  • - This study combines experimental and theoretical approaches to show how the elastic spin texture at phononic topological interfaces relates to the phonon eigenmodes in each unit cell, leading to specific behaviors in wave interactions.
  • - Experiments on TWGMs in specially designed aluminum plates reveal that the elastic spin locks at certain frequencies, enabling multiple effective wave routing strategies, which could be useful in future phononic topological insulators for precise control of wave propagation.

Article Abstract

Topological 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.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11423203PMC
http://dx.doi.org/10.1002/advs.202404839DOI Listing

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