4.5 Article

Tunable Acoustic Valley-Hall Edge States in Reconfigurable Phononic Elastic Waveguides

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PHYSICAL REVIEW APPLIED
卷 9, 期 1, 页码 -

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AMER PHYSICAL SOC
DOI: 10.1103/PhysRevApplied.9.014001

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  1. Air Force Office of Scientific Research [YIP FA9550-15-1-0133]

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We investigate the occurrence of acoustic topological edge states in a 2D phononic elastic waveguide due to a phenomenon that is the acoustic analog of the quantum valley Hall effect. We show that a topological transition takes place between two lattices having broken space-inversion symmetry due to the application of a tunable strain field. This condition leads to the formation of gapless edge states at the domain walls, as further illustrated by the analysis of the bulk-edge correspondence and of the associated topological invariants. Interestingly, topological edge states can also be triggered at the boundary of a single domain, when boundary conditions are properly selected. We also show that the static modulation of the strain field allows us to tune the response of the material between the different supported edge states. Although time-reversal symmetry is still intact in this material system, the edge states are topologically protected when intervalley mixing is either weak or negligible. This characteristic enables selective valley injection, which is achieved via synchronized source strategy.

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