English

Bose glass transition and spin-wave localization for 2D bosons in a random potential

Strongly Correlated Electrons 2013-10-21 v2 Disordered Systems and Neural Networks Quantum Gases Superconductivity

Abstract

A spin-wave approach of the zero temperature superfluid-insulator transition for two-dimensional hard-core bosons in a random potential μ=±\mu=\pm W is developed. While at the classical level there is no intervening phase between the Bose-condensed superfluid (SF) and the gapped disordered insulator, the introduction of quantum fluctuations leads to a much richer physics. Upon increasing the disorder strength W, the Bose-condensed fraction disappears first, before the SF. Then a gapless Bose-glass phase emerges over a finite region until the insulator appears. Furthermore, in the strongly disordered SF regime, a mobility edge in the spin-wave excitation spectrum is found at a finite frequency Ωc\Omega_c decreasing with W, and presumably vanishing in the Bose-glass phase.

Keywords

Cite

@article{arxiv.1304.7636,
  title  = {Bose glass transition and spin-wave localization for 2D bosons in a random potential},
  author = {Juan Pablo Álvarez Zúñiga and Nicolas Laflorencie},
  journal= {arXiv preprint arXiv:1304.7636},
  year   = {2013}
}