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非厄米人工声子晶体氮化硼中的谷物理。

Valley Physics in Non-Hermitian Artificial Acoustic Boron Nitride.

机构信息

Key Laboratory of Artificial Micro- and Nano-structures of Ministry of Education and School of Physics and Technology, Wuhan University, Wuhan 430072, China.

Department of Physics, Universidad Carlos III de Madrid, Avenida de la Universidad 30, 28916 Leganes (Madrid), Spain.

出版信息

Phys Rev Lett. 2018 Jun 15;120(24):246601. doi: 10.1103/PhysRevLett.120.246601.

Abstract

The valley can serve as a new degree of freedom in the manipulation of particles or waves in condensed matter physics, whereas systems containing combinations of gain and loss elements constitute rich building units that can mimic non-Hermitian properties. By introducing gain and loss in artificial acoustic boron nitride, we show that the acoustic valley states and the valley-projected edge states display exotic behaviors in that they sustain either attenuated or amplified wave propagation. Our findings show how non-Hermiticity introduces a mechanism in tuning topological protected valley transports, which may have significance in advanced wave control for sensing and communication applications.

摘要

该山谷可作为在凝聚态物理中操控粒子或波的新自由度,而含有增益和损耗元件组合的系统则构成了可模拟非厄米性质的丰富构建单元。通过在人工声氮化硼中引入增益和损耗,我们发现声谷态和谷投影的边缘态表现出奇异的行为,它们支持衰减或放大的波传播。我们的发现展示了非厄米性如何引入一种机制来调节拓扑保护的谷输运,这对于传感和通信应用中的先进波控制可能具有重要意义。

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