Doping-induced quantum spin Hall insulator to superconductor transition
Abstract
A unique property of a dynamically generated quantum spin Hall state are Goldstone modes that correspond to the long-wavelength fluctuations of the spin-orbit coupling order parameter whose topological Skyrmion excitations carry charge 2. Within the model considered here, upon varying the chemical potential, we observe two transitions: An s-wave superconducting order parameter develops at a critical chemical potential , corresponding to the excitation gap of pairs of fermions, and at the SO(3) order parameter of the quantum spin Hall state vanishes. Using negative-sign-free, large-scale quantum Monte Carlo simulations, we show that within our accuracy -- we can resolve dopings away from half filling down to . The length scale associated with the fluctuations of the quantum spin Hall order parameter grows down to our lowest doping, suggesting either a continuous or a weakly first-order transition. Contrary to mean-field expectations, the doping versus chemical potential curve is not linear, indicating a dynamical critical exponent if the transition is continuous.
Cite
@article{arxiv.2006.13239,
title = {Doping-induced quantum spin Hall insulator to superconductor transition},
author = {Zhenjiu Wang and Yuhai Liu and Toshihiro Sato and Martin Hohenadler and Chong Wang and Wenan Guo and Fakher F. Assaad},
journal= {arXiv preprint arXiv:2006.13239},
year = {2021}
}
Comments
10 pages, 13 Figures