表面状态
半金属
点反射
物理
Dirac(视频压缩格式)
凝聚态物理
曲面(拓扑)
拓扑绝缘体
费米能级
自旋(空气动力学)
对称(几何)
带隙
电子能带结构
镜像对称
量子力学
几何学
电子
热力学
中微子
数学
作者
Igor Marković,C. Hooley,Oliver J. Clark,Federico Mazzola,Matthew D. Watson,J. M. Riley,Klara Volckaert,Kaycee Underwood,Matthew S. Dyer,Philip A. E. Murgatroyd,Keiron Murphy,P. Le Fèvre,F. Bertran,Jun Fujii,I. Vobornik,Shilong Wu,Taichi Okuda,Jonathan Alaria,P. D. C. King
标识
DOI:10.1038/s41467-019-13464-z
摘要
Band inversions are key to stabilising a variety of novel electronic states in solids, from topological surface states in inverted bulk band gaps of topological insulators to the formation of symmetry-protected three-dimensional Dirac and Weyl points and nodal-line semimetals. Here, we create a band inversion not of bulk states, but rather between manifolds of surface states. We realise this by aliovalent substitution of Nb for Zr and Sb for S in the ZrSiS family of nonsymmorphic semimetals. Using angle-resolved photoemission and density-functional theory, we show how two pairs of surface states, known from ZrSiS, are driven to intersect each other in the vicinity of the Fermi level in NbGeSb, as well as to develop pronounced spin-orbit mediated spin splittings. We demonstrate how mirror symmetry leads to protected crossing points in the resulting spin-orbital entangled surface band structure, thereby stabilising surface state analogues of three-dimensional Weyl points. More generally, our observations suggest new opportunities for engineering topologically and symmetry-protected states via band inversions of surface states.
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