Xue Haoran, Wang Zihao, Huang Yue-Xin, Cheng Zheyu, Yu Letian, Foo Y X, Zhao Y X, Yang Shengyuan A, Zhang Baile
Division of Physics and Applied Physics, School of Physical and Mathematical Sciences, Nanyang Technological University, Singapore 637371, Singapore.
Research Laboratory for Quantum Materials, Singapore University of Technology and Design, Singapore 487372, Singapore.
Phys Rev Lett. 2022 Mar 18;128(11):116802. doi: 10.1103/PhysRevLett.128.116802.
Symmetry plays a key role in modern physics, as manifested in the revolutionary topological classification of matter in the past decade. So far, we seem to have a complete theory of topological phases from internal symmetries as well as crystallographic symmetry groups. However, an intrinsic element, i.e., the gauge symmetry in physical systems, has been overlooked in the current framework. Here, we show that the algebraic structure of crystal symmetries can be projectively enriched due to the gauge symmetry, which subsequently gives rise to new topological physics never witnessed under ordinary symmetries. We demonstrate the idea by theoretical analysis, numerical simulation, and experimental realization of a topological acoustic lattice with projective translation symmetries under a Z_{2} gauge field, which exhibits unique features of rich topologies, including a single Dirac point, Möbius topological insulator, and graphenelike semimetal phases on a rectangular lattice. Our work reveals the impact when gauge and crystal symmetries meet together with topology and opens the door to a vast unexplored land of topological states by projective symmetries.
对称性在现代物理学中起着关键作用,过去十年中物质的革命性拓扑分类就体现了这一点。到目前为止,我们似乎已经有了一个关于拓扑相的完整理论,它涵盖了内部对称性以及晶体对称群。然而,物理系统中的一个内在元素,即规范对称性,在当前框架中被忽视了。在这里,我们表明晶体对称性的代数结构可以由于规范对称性而得到射影丰富,这随后产生了在普通对称性下从未见过的新拓扑物理。我们通过理论分析、数值模拟以及在Z₂规范场下具有射影平移对称性的拓扑声子晶格的实验实现来证明这一想法,该晶格展现出丰富拓扑的独特特征,包括矩形晶格上的单个狄拉克点、莫比乌斯拓扑绝缘体和类石墨烯半金属相。我们的工作揭示了规范对称性和晶体对称性与拓扑相遇时所产生的影响,并通过射影对称性为广阔未探索的拓扑态领域打开了大门。