English

First-order phase transitions in spinor Bose gases and frustrated magnets

Quantum Gases 2016-11-28 v3

Abstract

We show that phase transitions in spin-one Bose gases and stacked triangular Heisenberg antiferromagnets -- an example of frustrated magnets with competing interactions -- are described by the same Landau-Ginzburg-Wilson Hamiltonian with O(3)×\timesO(2) symmetry. In agreement with previous nonperturbative-renormalization-group studies of the three-dimensional O(3)×\timesO(2) model, we find that the transition from the normal phase to the superfluid ferromagnetic phase in a spin-one Bose gas is weakly first order and shows pseudoscaling behavior. The (nonuniversal) pseudoscaling exponent ν\nu is fully determined by the scattering lengths a0a_0 and a2a_2. We provide estimates of ν\nu in 87^{87}Rb, 41^{41}K and 7^7Li atom gases which can be tested experimentally. We argue that pseudoscaling comes from either a crossover phenomena due to proximity of the O(6) Wilson-Fisher fixed point (87^{87}Rb and 41^{41}K) or the existence of two unphysical fixed points (with complex coordinates) which slow down the RG flow (7^7Li). These unphysical fixed points are a remnant of the chiral and antichiral fixed points that exist in the O(NN)×\timesO(2) model when NN is larger than Nc5.3N_c\simeq 5.3 (the transition being then second order and controlled by the chiral fixed point). Finally, we discuss a O(2)×\timesO(2) lattice model and show that our results, even though we find the transition to be first order, are compatible with Monte Carlo simulations yielding an apparent second-order transition.

Keywords

Cite

@article{arxiv.1608.01817,
  title  = {First-order phase transitions in spinor Bose gases and frustrated magnets},
  author = {T. Debelhoir and N. Dupuis},
  journal= {arXiv preprint arXiv:1608.01817},
  year   = {2016}
}

Comments

v1) 16 pages, 15 figures, v2) revised version, 15 pages, 13 figures, v3) revised version, 15 pages, 13 figures