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范德华InNbS中超导性与拓扑序的共存

The Coexistence of Superconductivity and Topological Order in Van der Waals InNbS.

作者信息

Zheng Bo, Feng Xukun, Liu Bo, Liu Zhanfeng, Wang Shasha, Zhang Ying, Ma Xiang, Luo Yang, Wang Changlong, Li Ruimin, Zhang Zeying, Cui Shengtao, Lu Yalin, Sun Zhe, He Junfeng, Yang Shengyuan A, Xiang Bin

机构信息

Department of Materials Science & Engineering, CAS Key Lab of Materials for Energy Conversion, Anhui Laboratory of Advanced Photon Science and Technology, University of Science and Technology of China, Hefei, 230026, China.

Research Laboratory for Quantum Materials, Singapore University of Technology and Design, Singapore, 487372, Singapore.

出版信息

Small. 2024 Feb;20(5):e2305909. doi: 10.1002/smll.202305909. Epub 2023 Sep 27.

Abstract

The research on systems with coexistence of superconductivity and nontrivial band topology has attracted widespread attention. However, the limited availability of material platforms severely hinders the research progress. Here, it reports the first experimental synthesis and measurement of high-quality single crystal van der Waals transition-metal dichalcogenide InNbS , revealing it as a topological nodal line semimetal with coexisting superconductivity. The temperature-dependent measurements of magnetization susceptibility and electrical transport show that InNbS is a type-II superconductor with a transition temperature T of 6 K. First-principles calculations predict multiple topological nodal ring states close to the Fermi level in the presence of spin-orbit coupling. Similar features are also observed in the as-synthesized BiNbS and PbNbS samples. This work provides new material platforms ANbS (A = In, Bi, and Pb) and uncovers their intriguing potential for exploring the interplay between superconductivity and band topology.

摘要

对具有超导性和非平凡能带拓扑共存的体系的研究引起了广泛关注。然而,材料平台的有限可用性严重阻碍了研究进展。在此,报道了高质量单晶范德华过渡金属二硫属化物InNbS₂的首次实验合成与测量,揭示其为具有超导性共存的拓扑节线半金属。磁化率和电输运的温度相关测量表明,InNbS₂是一种转变温度Tₑ为6 K的II型超导体。第一性原理计算预测,在存在自旋轨道耦合的情况下,费米能级附近存在多个拓扑节环态。在合成的BiNbS₂和PbNbS₂样品中也观察到了类似特征。这项工作提供了新的材料平台ANbS₂(A = In、Bi和Pb),并揭示了它们在探索超导性与能带拓扑相互作用方面的有趣潜力。

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