d-Wave Superfluidity in Optical Lattices of Ultracold Polar Molecules
Abstract
Recent work on ultracold polar molecules, governed by a generalization of the t-J Hamiltonian, suggests that molecules may be better suited than atoms for studying d-wave superfluidity due to stronger interactions and larger tunability of the system. We compute the phase diagram for polar molecules in a checkerboard lattice consisting of weakly coupled square plaquettes. In the simplest experimentally realizable case where there is only tunneling and an XX-type spin-spin interaction, we identify the parameter regime where d-wave superfluidity occurs. We also find that the inclusion of a density-density interaction destroys the superfluid phase and that the inclusion of a spin-density or an Ising-type spin-spin interaction can enhance the superfluid phase. We also propose schemes for experimentally realizing the perturbative calculations exhibiting enhanced d-wave superfluidity.
Keywords
Cite
@article{arxiv.1110.5330,
title = {d-Wave Superfluidity in Optical Lattices of Ultracold Polar Molecules},
author = {Kevin A. Kuns and Ana Maria Rey and Alexey V. Gorshkov},
journal= {arXiv preprint arXiv:1110.5330},
year = {2011}
}
Comments
22 pages, 12 figures; v2: revised discussions