Liu Tao, He James Jun, Yang Zhongmin, Nori Franco
School of Physics and Optoelectronics, South China University of Technology, Guangzhou 510640, China.
RIKEN Center for Emergent Matter Science, Wako, Saitama 351-0198, Japan.
Phys Rev Lett. 2021 Nov 5;127(19):196801. doi: 10.1103/PhysRevLett.127.196801.
For first-order topological semimetals, non-Hermitian perturbations can drive the Weyl nodes into Weyl exceptional rings having multiple topological structures and no Hermitian counterparts. Recently, it was discovered that higher-order Weyl semimetals, as a novel class of higher-order topological phases, can uniquely exhibit coexisting surface and hinge Fermi arcs. However, non-Hermitian higher-order topological semimetals have not yet been explored. Here, we identify a new type of topological semimetal, i.e., a higher-order topological semimetal with Weyl exceptional rings. In such a semimetal, these rings are characterized by both a spectral winding number and a Chern number. Moreover, the higher-order Weyl-exceptional-ring semimetal supports both surface and hinge Fermi-arc states, which are bounded by the projection of the Weyl exceptional rings onto the surface and hinge, respectively. Noticeably, the dissipative terms can cause the coupling of two exceptional rings with opposite topological charges, so as to induce topological phase transitions. Our studies open new avenues for exploring novel higher-order topological semimetals in non-Hermitian systems.
对于一阶拓扑半金属,非厄米微扰可将外尔点驱动到具有多种拓扑结构且无厄米对应物的外尔例外环中。最近,人们发现高阶外尔半金属作为一类新型的高阶拓扑相,能够独特地展现出共存的表面费米弧和棱边费米弧。然而,非厄米高阶拓扑半金属尚未得到研究。在此,我们确定了一种新型的拓扑半金属,即具有外尔例外环的高阶拓扑半金属。在这种半金属中,这些环由一个谱缠绕数和一个陈数共同表征。此外,高阶外尔例外环半金属支持表面费米弧态和棱边费米弧态,它们分别由外尔例外环在表面和棱边的投影界定。值得注意的是,耗散项可导致两个具有相反拓扑电荷的例外环发生耦合,从而引发拓扑相变。我们的研究为在非厄米系统中探索新型高阶拓扑半金属开辟了新途径。