论文标题

高阶狄拉克声音晶体

Higher-order Dirac sonic crystals

论文作者

Qiu, Huahui, Xiao, Meng, Zhang, Fan, Qiu, Chunyin

论文摘要

发现物质的新拓扑阶段是基本物理和材料科学的主要主题。 Dirac半学提供了一个非凡的平台,用于探索对称破坏下的拓扑相变。最近的理论研究表明,三维的狄拉克半学可以带有引人入胜的铰链状态,这是以前不知道的高阶拓扑表现。但是,它在实验中的认识尚未实现。在这封信中,我们提出了一个最小模型,以构建一个由C_6V对称性保护的无旋转高阶半dirac半学。通过打破不同的对称性,该父相变为各种新的拓扑阶段,包括高阶拓扑绝缘子,高阶Weyl半准和高阶节点半学。此外,我们第一次在声音晶体中实验意识到了这一前所未有的高阶拓扑阶段,并通过瞬时空间光谱和真实空间可视化对所需的铰链状态进行明确观察。我们的发现可能会提供新的机会来操纵古典波浪,例如声音和光线。

Discovering new topological phases of matter is a major theme in fundamental physics and materials science. Dirac semimetal provides an exceptional platform for exploring topological phase transitions under symmetry breaking. Recent theoretical studies have revealed that a three-dimensional Dirac semimetal can harbor fascinating hinge states, a higher-order topological manifestation not known before. However, its realization in experiment is yet to be achieved. In this Letter, we propose a minimum model to construct a spinless higher-order Dirac semimetal protected by C_6v symmetry. By breaking different symmetries, this parent phase transitions into a variety of novel topological phases including higher-order topological insulator, higher-order Weyl semimetal, and higher-order nodal-ring semimetal. Furthermore, for the first time, we experimentally realize this unprecedented higher-order topological phase in a sonic crystal and present an unambiguous observation of the desired hinge states via momentun-space spectroscopy and real-space visualization. Our findings may offer new opportunities to manipulate classical waves such as sound and light.

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