Backscattering-free edge states below all bands in two-dimensional auxetic media
ORAL
Abstract
Unidirectional and backscattering-free propagation of sound waves is of fundamental interest in physics and highly sought-after in engineering. Current strategies utilize topologically protected chiral edge modes in bandgaps, or complex mechanisms involving active constituents or nonlinearity. Here we propose a new class of passive, linear, one-way edge states based on spin-momentum locking of Rayleigh waves in two-dimensional media in the limit of vanishing bulk modulus, which provides perfect unidirectional and backscattering-free edge propagation immune to any edge roughness at a broad range of frequencies instead of residing in gaps between bulk bands. We further show that such modes are characterized by a new topological winding number that protects the linear momentum of the wave along the edge. These passive and backscattering-free edge waves have the potential to enable a new class of phononic devices in the form of lattices or continua that work in previously inaccessible frequency ranges.
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Publication: https://arxiv.org/abs/2306.07493
Presenters
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Nan Cheng
University of Michigan
Authors
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Nan Cheng
University of Michigan
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Wenting Cheng
University of Michigan
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Kai Qian
University of California, San Diego
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Nicholas Boechler
University of California, San Diego
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Xiaoming Mao
University of Michigan
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Kai Sun
University of Michigan