Gain/loss effects on spin-orbit coupled ultracold atoms in two-dimensional optical lattices

被引:0
|
作者
Zhi-Cong Xu
Ziyu Zhou
Enhong Cheng
Li-Jun Lang
Shi-Liang Zhu
机构
[1] South China Normal University,Guangdong Provincial Key Laboratory of Quantum Engineering and Quantum Materials, School of Physics and Telecommunication Engineering
[2] South China Normal University,Guangdong
关键词
spin-orbit coupled ultracold atoms; exceptional loop; Wilson-loop method; non-Hermitian non-Abelian Berry curvature;
D O I
暂无
中图分类号
学科分类号
摘要
Due to the fundamental position of spin-orbit coupled ultracold atoms in the simulation of topological insulators, the gain/loss effects on these systems should be evaluated when considering the measurement or the coupling to the environment. Here, incorporating the mature gain/loss techniques into the experimentally realized spin-orbit coupled ultracold atoms in two-dimensional optical lattices, we investigate the corresponding non-Hermitian tight-binding model and evaluate the gain/loss effects on various properties of the system, revealing the interplay of the non-Hermiticity and the spin-orbit coupling. Under periodic boundary conditions, we analytically obtain the topological phase diagram, which undergoes a non-Hermitian gapless interval instead of a point that the Hermitian counterpart encounters for a topological phase transition. We also unveil that the band inversion is just a necessary but not sufficient condition for a topological phase in two-level spin-orbit coupled non-Hermitian systems. Because the nodal loops of the upper or lower two dressed bands of the Hermitian counterpart can be split into exceptional loops in this non-Hermitian model, a gauge-independent Wilson-loop method is developed for numerically calculating the Chern number of multiple degenerate complex bands. Under open boundary conditions, we find that the conventional bulk-boundary correspondence does not break down with only on-site gain/loss due to the lack of non-Hermitian skin effect, but the dissipation of chiral edge states depends on the boundary selection, which may be used in the control of edge-state dynamics. Given the technical accessibility of state-dependent atom loss, this model could be realized in current cold-atom experiments.
引用
收藏
相关论文
共 50 条
  • [31] Landau level crossing in a spin-orbit coupled two-dimensional electron gas
    Wu, Xing-Jun
    Li, Ting-Xin
    Zhang, Chi
    Du, Rui-Rui
    APPLIED PHYSICS LETTERS, 2015, 106 (01)
  • [32] Spin-orbit coupled fermions in ladderlike optical lattices at half filling
    Sun, G.
    Jaramillo, J.
    Santos, L.
    Vekua, T.
    PHYSICAL REVIEW B, 2013, 88 (16)
  • [33] Model for spin-orbit effects in two-dimensional semiconductors in magnetic fields
    Valin-Rodriguez, Manuel
    Nazmitdinov, Rashid G.
    PHYSICAL REVIEW B, 2006, 73 (23):
  • [34] Spin-orbit coupling effects in two-dimensional electron and hole systems
    Winkler, R
    SPIN-ORBIT COUPLING EFFECTS IN TWO-DIMENSIONAL ELECTRON AND HOLE SYSTEMS, 2003, 191 : 1 - 8
  • [35] Spin-orbit-coupled atomic Fermi gases in two-dimensional optical lattices in the presence of a Zeeman field
    Koinov, Zlatko
    Pahl, Shanna
    PHYSICAL REVIEW A, 2017, 95 (03)
  • [36] Photon-Induced Spin-Orbit Coupling in Ultracold Atoms inside Optical Cavity
    Dong, Lin
    Zhu, Chuanzhou
    Pu, Han
    ATOMS, 2015, 3 (02): : 182 - 194
  • [37] Optical spectrum of a two-dimensional hole gas in the presence of spin-orbit interaction
    Yang, C. H.
    Xu, W.
    Zeng, Z.
    Lu, F.
    Zhang, C.
    PHYSICAL REVIEW B, 2006, 74 (07)
  • [38] Position-dependent spin-orbit coupling for ultracold atoms
    Su, S-W
    Gou, S-C
    Liu, I-K
    Spielman, I. B.
    Santos, L.
    Acus, A.
    Mekys, A.
    Ruseckas, J.
    Juzeliunas, G.
    NEW JOURNAL OF PHYSICS, 2015, 17 : 1 - 8
  • [39] Effects of optical lattices on bright solitons in spin-orbit coupled Bose-Einstein condensates
    Sekh, Golam Ali
    Talukdar, Benoy
    PHYSICS LETTERS A, 2021, 415
  • [40] SU(3) Spin-Orbit Coupling in Systems of Ultracold Atoms
    Barnett, Ryan
    Boyd, G. R.
    Galitski, Victor
    PHYSICAL REVIEW LETTERS, 2012, 109 (23)