具有非对称性的 NbGeSb 的角度分辨光发射研究

IF 1.5 4区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
Huan Ma, Ning Tan, Xuchuan Wu, Man Li, Yiyan Wang, Hong-Yan Lu, Tianlong Xia, Shancai Wang
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引用次数: 0

摘要

在这项工作中,我们研究了非对称性 NbGeSb 的电子结构。我们采用角度分辨光发射光谱来观察和识别布里渊区的体态和表面态。通过利用高能光子,我们确定了沿 X-R 方向的体态费米面和体态节点线,而利用低能光子则观察到了表面态的费米面。我们观察到表面带从高对称点 $\overline{\mathrm{X}}$ 分裂开来。通过对块状模型和 1 至 5 层板坯模型的密度泛函理论计算,以及铌锗锑的自旋纹理,我们验证了带分裂可能是由于表面的空间反转对称破缺引起的类似拉什巴的自旋轨道耦合造成的。这些分裂的表面带相互交叉,形成了受镜像对称性保护的二维韦尔交叉。我们的发现为二维拓扑和对称保护带反转的表面态提供了深入的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Angle-resolved photoemission study of NbGeSb with non-symmorphic symmetry
In this work, we investigate the electronic structure of NbGeSb with non-symmorphic symmetry. We employ angle-resolved photoemission spectroscopy to observe and identify the bulk and surface states over the Brillouin zone. By utilizing high-energy photons, we identify the bulk Fermi surface and bulk nodal line along the direction X-R, while the Fermi surface of the surface state is observed by using low-energy photons. We observe the splitting of surface bands away from the high-symmetry point $\overline{\mathrm{X}}$. The density functional theory calculations on bulk and 1 to 5-layer slab models, as well as spin textures of NbGeSb, verify that the band splitting could be attributed to the Rashba-like spin- orbit coupling caused by space-inversion-symmetry breaking at the surface. These splitted surface bands cross with each other, forming two-dimensional Weyl-like crossings that are protected by mirror symmetry. Our findings provide insights into the two-dimensional topological and symmetry- protected band inversion of surface states.
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来源期刊
Chinese Physics B
Chinese Physics B 物理-物理:综合
CiteScore
2.80
自引率
23.50%
发文量
15667
审稿时长
2.4 months
期刊介绍: Chinese Physics B is an international journal covering the latest developments and achievements in all branches of physics worldwide (with the exception of nuclear physics and physics of elementary particles and fields, which is covered by Chinese Physics C). It publishes original research papers and rapid communications reflecting creative and innovative achievements across the field of physics, as well as review articles covering important accomplishments in the frontiers of physics. Subject coverage includes: Condensed matter physics and the physics of materials Atomic, molecular and optical physics Statistical, nonlinear and soft matter physics Plasma physics Interdisciplinary physics.
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