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Acoustic spin-Chern insulator induced by synthetic spin–orbit coupling with spin conservation breaking
Acoustic spin-Chern insulator induced by synthetic spin–orbit coupling with spin conservation breaking
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Acoustic spin-Chern insulator induced by synthetic spin–orbit coupling with spin conservation breaking
Acoustic spin-Chern insulator induced by synthetic spin–orbit coupling with spin conservation breaking

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Acoustic spin-Chern insulator induced by synthetic spin–orbit coupling with spin conservation breaking
Acoustic spin-Chern insulator induced by synthetic spin–orbit coupling with spin conservation breaking
Journal Article

Acoustic spin-Chern insulator induced by synthetic spin–orbit coupling with spin conservation breaking

2020
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Overview
Topologically protected surface modes of classical waves hold the promise to enable a variety of applications ranging from robust transport of energy to reliable information processing networks. However, both the route of implementing an analogue of the quantum Hall effect as well as the quantum spin Hall effect are obstructed for acoustics by the requirement of a magnetic field, or the presence of fermionic quantum statistics, respectively. Here, we construct a two-dimensional topological acoustic crystal induced by the synthetic spin-orbit coupling, a crucial ingredient of topological insulators, with spin non-conservation. Our setup allows us to free ourselves of symmetry constraints as we rely on the concept of a non-vanishing “spin” Chern number. We experimentally characterize the emerging boundary states which we show to be gapless and helical. More importantly, we observe the spin flipping transport in an H-shaped device, demonstrating evidently the spin non-conservation of the boundary states. In acoustic systems, quantum spin Hall physics is rarely observed because the crucial ingredient spin-orbit coupling is missing. Here, the authors construct an acoustic crystal with synthetic spin-orbit coupling and observe gapless helical boundary states as well as spin flipping effect.