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拓扑节面、二次狄拉克半金属态以及ScH和LuH超导体中的范霍夫奇点

Topological Nodal Surface and Quadratic Dirac Semimetal States and van Hove Singularities in ScH and LuH Superconductors.

作者信息

Sufyan Ali, Larsson J Andreas

机构信息

Applied Physics, Division of Materials Science, Department of Engineering Sciences and Mathematics, Luleå University of Technology, Luleå SE-97187, Sweden.

出版信息

ACS Omega. 2023 Mar 1;8(10):9607-9613. doi: 10.1021/acsomega.3c00207. eCollection 2023 Mar 14.

Abstract

The coexistence of non-trivial topology and superconductivity in a material may induce a novel physical phenomenon known as topological superconductivity. Topological superconductors have been the subject of intense research, yet there are severe limitations in their application due to a lack of suitable materials. Topological nodal surface semimetals with nearly flat nodal surfaces near the Fermi level can be promising materials to achieve topological superconductivity. Here, we use first-principles calculations to examine the topological electronic characteristics of two new superconductors, ScH and LuH, at both ambient and high pressures. Our studies show that both ScH and LuH have van Hove singularities, which confirms their superconductivity. Interestingly, both materials host topological nodal surface states under the protection of time reversal and spatial inversion symmetries in the absence of spin-orbit coupling (SOC). These nodal surfaces are distinguished by a pair of unique drum-head-like surface states not previously observed in nodal surface semimetals. Moreover, the nodal surfaces transform into essential spin-orbit quadratic Dirac points when SOC is included. Our findings demonstrate that ScH and LuH are good candidates to investigate the exotic properties of both nodal surface semimetals (NSSMs) and quadratic Dirac semimetal states and also provide a platform to explore the coexistence of topology and superconductivity in NSSMs with promising applications in high-speed electronics and topological quantum computing.

摘要

材料中不平凡的拓扑结构与超导性的共存可能会引发一种被称为拓扑超导的新物理现象。拓扑超导体一直是深入研究的主题,但由于缺乏合适的材料,它们在应用方面存在严重限制。在费米能级附近具有近乎平坦节面的拓扑节面半金属有望成为实现拓扑超导的材料。在此,我们使用第一性原理计算来研究两种新型超导体ScH和LuH在常压和高压下的拓扑电子特性。我们的研究表明,ScH和LuH都具有范霍夫奇点,这证实了它们的超导性。有趣的是,在没有自旋轨道耦合(SOC)的情况下,这两种材料在时间反演和空间反演对称性的保护下都拥有拓扑节面态。这些节面以一对独特的鼓面状表面态为特征,这是之前在节面半金属中未曾观察到的。此外,当包含SOC时,节面会转变为基本的自旋轨道二次狄拉克点。我们的研究结果表明,ScH和LuH是研究节面半金属(NSSMs)和二次狄拉克半金属态奇异特性的良好候选材料,也为探索NSSMs中拓扑与超导的共存提供了一个平台,在高速电子学和拓扑量子计算方面具有广阔的应用前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1c18/10018709/a96e718ec298/ao3c00207_0002.jpg

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