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Quantum phases of tilted dipolar bosons in two-dimensional optical lattice

Quantum Gases 2019-11-27 v1 Atomic Physics

Abstract

We consider a minimal model to describe the quantum phases of ultracold dipolar bosons in two-dimensional (2D) square optical lattices. The model is a variation of the extended Bose-Hubbard model and apt to study the quantum phases arising from the variation in the tilt angle θ\theta of the dipolar bosons. At low tilt angles 0θ\apprle250^{\circ}\leqslant\theta\apprle25^{\circ}, the ground state of the system are phases with checkerboard order, which could be either checkerboard supersolid or checkerboard density wave. For high tilt angles 55\apprgeθ\apprge3555^{\circ}\apprge\theta\apprge35^{\circ}, phases with striped order of supersolid or density wave are preferred. In the intermediate domain 25\apprleθ\apprle3525^{\circ}\apprle\theta\apprle35^{\circ} an emulsion or SF phase intervenes the transition between the checkerboard and striped phases. The attractive interaction dominates for θ\apprge55\theta\apprge55^{\circ}, which renders the system unstable and there is a density collapse. For our studies we use Gutzwiller mean-field theory to obtain the quantum phases and the phase boundaries. In addition, we calculate the phase boundaries between an incompressible and a compressible phase of the system by considering second order perturbation analysis of the mean-field theory. The analytical results, where applicable, are in excellent agreement with the numerical results.

Keywords

Cite

@article{arxiv.1906.07483,
  title  = {Quantum phases of tilted dipolar bosons in two-dimensional optical lattice},
  author = {Soumik Bandyopadhyay and Rukmani Bai and Sukla Pal and K. Suthar and Rejish Nath and D. Angom},
  journal= {arXiv preprint arXiv:1906.07483},
  year   = {2019}
}

Comments

10 pages, 5 figures