布里渊区
拓扑绝缘体
拓扑(电路)
凝聚态物理
自旋电子学
扫描隧道显微镜
密度泛函理论
超导电性
材料科学
光电发射光谱学
物理
量子力学
铁磁性
谱线
数学
组合数学
作者
Ye-Shun Lan,Chia-Ju Chen,Shu-Hua Kuo,Yen-Hui Lin,Angus Huang,Jing-Yue Huang,Pin-Jui Hsu,Cheng‐Maw Cheng,Horng‐Tay Jeng
出处
期刊:ACS Nano
[American Chemical Society]
日期:2024-08-01
卷期号:18 (32): 20990-20998
标识
DOI:10.1021/acsnano.4c01322
摘要
Two-dimensional topological insulators (2D TIs) have distinct electronic properties that make them attractive for various applications, especially in spintronics. The conductive edge states in 2D TIs are protected from disorder and perturbations and are spin-polarized, which restrict current flow to a single spin orientation. In contrast, topological nodal line semimetals (TNLSM) are distinct from TIs because of the presence of a 1D ring of degeneracy formed from two bands that cross each other along a line in the Brillouin zone. These nodal lines are protected by topology and can be destroyed only by breaking certain symmetry conditions, making them highly resilient to disorder and defects. However, 2D TNLSMs do not possess protected boundary modes, which makes their investigation challenging. There have been several theoretical predictions of 2D TNLSMs, however, experimental realizations are rare. β-Sn, a metallic allotrope of tin with a superconducting temperature of 3.72 K, may be a candidate for a topological superconductor that can host Majorana Fermions for quantum computing. In this work, single layers of α-Sn and β-Sn on a Cu(111) substrate are successfully prepared and studied using scanning tunneling microscopy, angle-resolved photoemission spectroscopy, and density functional theory calculations. The lattice and electronic structure undergo a topological transition from 2D topological insulator α-Sn to 2D TNLSM β-Sn, with two types of nodal lines coexisting in monolayer β-Sn. Such a realization of two types of nodal lines in one 2D material has not been reported to date. Moreover, we also observed an unexpected phenomenon of freestanding-like electronic structures of β-Sn/Cu(111), highlighting the potential of ultrathin β-Sn films as a platform for exploring the electronic properties of 2D TNLSM and topological superconductors, such as few-layer superconducting β-Sn in lateral contact with topological nodal line single-layer β-Sn.
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