Chiral and pair superfluidity in triangular ladder produced by state-dependent Kronig-Penney lattice
Abstract
We propose a concrete realization of a triangular ladder for ultracold atoms, which simultaneously hosts geometric frustration and unusual two-body interactions, and in particular controllable pair hopping and density-induced tunneling. This is done by means of a spin-dependent Kronig-Penney lattice created using a spatially-dependent tripod-type atom-light coupling. We apply density matrix renormalization group (DMRG) calculations to derive the quantum phase diagram. We find that pair tunneling stabilizes a robust pair superfluid, characterized by power-law decay of pair correlations. Additionally, a chiral superfluid arises from frustration induced by competing nearest neighbor (NN) and next-nearest neighbor (NNN) tunnelings. Finally, in the high barrier regime, we map our system onto the XXZ spin model and find the exact phase transition points.
Keywords
Cite
@article{arxiv.2603.04498,
title = {Chiral and pair superfluidity in triangular ladder produced by state-dependent Kronig-Penney lattice},
author = {Domantas Burba and Giedrius Žlabys and Dzmitry Viarbitski and Thomas Busch and Gediminas Juzeliūnas},
journal= {arXiv preprint arXiv:2603.04498},
year = {2026}
}
Comments
12 pages, 6 figures