Topological features without a lattice in Rashba spin-orbit coupled atoms

被引:0
|
作者
A. Valdés-Curiel
D. Trypogeorgos
Q.-Y. Liang
R. P. Anderson
I. B. Spielman
机构
[1] Joint Quantum Institute,
[2] University of Maryland,undefined
[3] CNR Nanotec,undefined
[4] Institute of Nanotechnology,undefined
[5] La Trobe Institute of Molecular Science,undefined
[6] La Trobe University,undefined
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Topological order can be found in a wide range of physical systems, from crystalline solids, photonic meta-materials and even atmospheric waves to optomechanic, acoustic and atomic systems. Topological systems are a robust foundation for creating quantized channels for transporting electrical current, light, and atmospheric disturbances. These topological effects are quantified in terms of integer-valued ‘invariants’, such as the Chern number, applicable to the quantum Hall effect, or the Z2\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$${{\mathbb{Z}}}_{2}$$\end{document} invariant suitable for topological insulators. Here, we report the engineering of Rashba spin-orbit coupling for a cold atomic gas giving non-trivial topology, without the underlying crystalline structure that conventionally yields integer Chern numbers. We validated our procedure by spectroscopically measuring both branches of the Rashba dispersion relation which touch at a single Dirac point. We then measured the quantum geometry underlying the dispersion relation using matter-wave interferometry to implement a form of quantum state tomography, giving a Berry’s phase with magnitude π. This implies that opening a gap at the Dirac point would give two dispersions (bands) each with half-integer Chern number, potentially implying new forms of topological transport.
引用
收藏
相关论文
共 50 条
  • [31] Topological damping Rashba spin-orbit torque in ballistic magnetic domain walls
    Wang, D.
    Zhou, Yan
    [J]. PHYSICAL REVIEW B, 2020, 101 (02)
  • [32] Temperature dependence of the intrinsic spin Hall effect in Rashba spin-orbit coupled systems
    Li, Zhou
    Ma, Zhongshui
    Zhang, Chao
    [J]. EPL, 2008, 82 (06)
  • [33] Spin filtering in a HgTe topological insulator PN junction via Rashba spin-orbit interaction
    Lin, Liangzhong
    Pu, Qingmin
    Shi, Zhiqiang
    Li, Xiaojing
    Zhang, Dong
    Zhu, Jiaji
    Wu, Zhenhua
    [J]. SOLID STATE COMMUNICATIONS, 2020, 313
  • [34] Spin excitation spectra of spin-orbit coupled bosons in an optical lattice
    Li Ruo-Yan
    He Liang
    Sun Qing
    Ji An-Chun
    Tian Guang-Shan
    [J]. CHINESE PHYSICS B, 2015, 24 (05)
  • [35] Topological Transport in Spin-Orbit Coupled Bosonic Mott Insulators
    Wong, C. H.
    Duine, R. A.
    [J]. PHYSICAL REVIEW LETTERS, 2013, 110 (11)
  • [36] Topological metallic phases in spin-orbit coupled bilayer systems
    Pan, Hui
    Li, Xin
    Qiao, Zhenhua
    Liu, Cheng-Cheng
    Yao, Yugui
    Yang, Shengyuan A.
    [J]. NEW JOURNAL OF PHYSICS, 2014, 16
  • [37] Topological superfluids for spin-orbit coupled ultracold Fermi gases
    Jia, Wei
    Huang, Zhi-Hao
    Wei, Xian
    Zhao, Qing
    Liu, Xiong-Jun
    [J]. PHYSICAL REVIEW B, 2019, 99 (09)
  • [38] Enhanced optical spin current injection in the hexagonal lattice with intrinsic and Rashba spin-orbit interactions
    Zou, Jianfei
    Tang, Chunmei
    Zhang, Aimei
    [J]. PHYSICS LETTERS A, 2017, 381 (13) : 1197 - 1201
  • [39] Dzyaloshinskii-Moriya interaction in strongly spin-orbit coupled systems: General formula and application to topological and Rashba materials
    Hayakawa, Yuto
    Imai, Yusuke
    Kohno, Hiroshi
    [J]. PHYSICAL REVIEW B, 2023, 108 (06)
  • [40] Quantum dots with Rashba spin-orbit coupling
    Governale, M
    [J]. PHYSICAL REVIEW LETTERS, 2002, 89 (20) : 206802 - 206802