Strong-coupling study of spin-1 bosons in square and triangular optical lattice
arXiv:1312.4689 · doi:10.1088/1742-6596/497/1/012024
Abstract
We examine the superfluid-Mott insulator (SF-MI) transition of antiferromagnetically interacting spin-1 bosons trapped in a square or triangular optical lattice. We perform a strong-coupling expansion up to the third order in the transfer integral between the nearest-neighbor lattices. As expected from previous studies, an MI phase with an even number of bosons is considerably more stable against the SF phase than it is with an odd number of bosons. Results for the triangular lattice are similar to those for the square lattice, which suggests that the lattice geometry does not strongly affect the stability of the MI phase against the SF phase.
13 pages, 8 figures, Submitted to J. Phys: Conf. Ser. as a proceeding for the 22nd International Laser Physics Workshop
References in corpus (8)
- Phase diagram of spin-1 bosons on one-dimensional lattices
- Strong-coupling expansion for the momentum distribution of the Bose Hubbard model with benchmarking against exact numerical results
- Spin-1 bosons with coupled ground states in optical lattices
- Magnetic and Superfluid Transitions in the d=1 Spin-1 Boson Hubbard Model
- First- and second-order superfluid--Mott-insulator phase transitions of spin-1 bosons with coupled ground states in optical lattices
- Ground States of the Spin-1 Bose-Hubbard Model
- Mott Transition and Spin Structures of Spin-1 Bosons in Two-Dimensional Optical Lattice at Unit Filling
- Strong-coupling expansion for the spin-1 Bose-Hubbard model