Yang Erchan, Yang Biao, You Oubo, Chan Hsun-Chi, Mao Peng, Guo Qinghua, Ma Shaojie, Xia Lingbo, Fan Dianyuan, Xiang Yuanjiang, Zhang Shuang
International Collaborative Laboratory of 2D Materials for Optoelectronic Science & Technology of Ministry of Education, Institute of Microscale Optoelectronics (IMO), Shenzhen University, Shenzhen 518060, China.
School of Physics and Astronomy, University of Birmingham, Birmingham B15 2TT, United Kingdom.
Phys Rev Lett. 2020 Jul 17;125(3):033901. doi: 10.1103/PhysRevLett.125.033901.
In crystals, two bands may cross each other and form degeneracies along a closed loop in the three-dimensional momentum space, which is called nodal line. Nodal line degeneracy can be designed to exhibit various configurations such as nodal rings, chains, links, and knots. Very recently, non-Abelian band topology was proposed in nodal link systems, where the nodal lines formed by consecutive pairs of bands exhibit interesting braiding structures and the underlying topological charges are described by quaternions. Here, we experimentally demonstrate non-Abelian nodal links in a biaxial hyperbolic metamaterial. The linked nodal lines threading through each other are formed by the crossings between three adjacent bands. Based on the non-Abelian charges, we further analyze various admissible nodal link configurations for the three-band system. On the interface between the metamaterial and air, surface bound states in the continuum are observed, which serves as the symmetry-enforced derivative of drumhead surface states from the linked nodal lines. Our work serves as a direct observation of the global topological structures of nodal links, and provides a platform for studying non-Abelian topological charge in the momentum space.
在晶体中,两条能带可能相互交叉,并在三维动量空间中沿着一个闭环形成简并,这被称为节线。节线简并可以被设计成呈现各种构型,如节环、节链、节链环和节纽结。最近,在节链环系统中提出了非阿贝尔能带拓扑,其中由连续的能带对形成的节线呈现出有趣的编织结构,并且其潜在的拓扑电荷由四元数描述。在此,我们通过实验证明了双轴双曲线超材料中的非阿贝尔节链环。相互穿过的相连节线由三个相邻能带之间的交叉形成。基于非阿贝尔电荷,我们进一步分析了三能带系统的各种可允许的节链环构型。在超材料与空气的界面上,观察到了连续统中的表面束缚态,它是由相连节线产生的鼓膜表面态的对称性强制导数。我们的工作是对节链环全局拓扑结构的直接观测,并为研究动量空间中的非阿贝尔拓扑电荷提供了一个平台。