Wang Xiaotian, Cheng Zhenxiang, Zhang Gang, Kuang Minquan, Wang Xiao-Lin, Chen Hong
Institute for Superconducting and Electronic Materials (ISEM), University of Wollongong, Wollongong 2500, Australia.
Institute of High Performance Computing, Agency for Science, Technology and Research (A*STAR), 138632, Singapore.
Phys Chem Chem Phys. 2020 Jun 24;22(24):13650-13658. doi: 10.1039/d0cp02334e.
Following topological nodal point semimetals, topological nodal line semimetals with one dimensional (1D) topological elements have recently aroused great interest worldwide in the fields of quantum chemistry and condensed matter physics. In this study, by means of first-principles, we predict that quasi-two-dimensional (2D) α-FeSi2 with a P4/mmm space group is a topological nodal line semimetal with two nodal lines close to the Fermi level, in the kz = 0 and kz = π planes. Usually, topological nodal line semimetals can be classified into type I, type II, and hybrid-type categories, each type with different physical properties. Importantly, for the first time, we find that type I, type II, and hybrid-type nodal lines can be realized in a realistic material, i.e., quasi-2D α-FeSi2, by strain switching. The realization of tunable nodal line types occurs because quasi-2D α-FeSi2 has special opposite-pocket-behaving bands around the Fermi level. The results presented herein reflect that α-FeSi2 is a valuable candidate for spintronics application by utilization of type I, type II, and hybrid-type topological nodal line semimetals in a single material tuned by mechanical strain.
继拓扑节点点半金属之后,具有一维(1D)拓扑元素的拓扑节线半金属最近在量子化学和凝聚态物理领域引起了全球范围内的广泛关注。在本研究中,我们通过第一性原理预测,具有P4/mmm空间群的准二维(2D)α-FeSi2是一种拓扑节线半金属,在kz = 0和kz = π平面中有两条靠近费米能级的节线。通常,拓扑节线半金属可分为I型、II型和混合型,每种类型具有不同的物理性质。重要的是,我们首次发现,通过应变切换,可以在实际材料即准二维α-FeSi2中实现I型、II型和混合型节线。可调节节线类型的实现是因为准二维α-FeSi2在费米能级附近具有特殊的对口袋行为能带。本文给出的结果表明,通过利用机械应变调节的单一材料中的I型、II型和混合型拓扑节线半金属,α-FeSi2是自旋电子学应用的有价值候选材料。