Time-reversal-invariant spin-orbit-coupled bilayer Bose-Einstein Condensates
Abstract
Time-reversal invariance plays a crucial role for many exotic quantum phases, particularly for topologically nontrivial states, in spin-orbit coupled electronic systems. Recently realized spin-orbit coupled cold-atom systems, however, lack the time-reversal symmetry due to the inevitable presence of an effective transverse Zeeman field. We address this issue by analyzing a realistic scheme to preserve time-reversal symmetry in spin-orbit coupled ultracold atoms, with the use of Hermite-Gaussian-laser induced Raman transitions that preserve spin-layer time-reversal symmetry. We find that the system's quantum states form Kramers pairs, resulting in symmetry-protected gap closing of the lowest two bands at arbitrarily large Raman coupling. We also show that Bose gases in this setup exhibit interaction-induced layer-stripe and uniform phases as well as intriguing spin-layer symmetry and spin-layer correlation.
Keywords
Cite
@article{arxiv.1710.08323,
title = {Time-reversal-invariant spin-orbit-coupled bilayer Bose-Einstein Condensates},
author = {Matthew Maisberger and Lin-Cheng Wang and Kuei Sun and Yong Xu and Chuanwei Zhang},
journal= {arXiv preprint arXiv:1710.08323},
year = {2018}
}
Comments
7 pages, 4 figures