Engineering SU($N$)-Symmetric Hubbard Models with Microwave-Shielded Dipolar Molecules
Abstract
Ultracold polar molecules provide strong, long-range interactions that microwave shielding makes tunable and nearly nuclear-spin independent, giving an emergent SU() symmetry. However, extended Hubbard models of polar molecules in optical lattices lack, so far, controllable finite on-site interactions, a key ingredient of strong correlated physics. We show that tuning the Rabi frequency of the microwave coupling can bring two individual molecules (monomers) on neighboring lattice sites into resonance with a field-linked dimer (doublon) on one of the sites, enabling coherent doublon--monomer-pair conversion. In this model, we characterize the key Hubbard parameters and the dimer lifetime, demonstrating that the on-site and off-site interactions can be tuned nearly independently through the microwave amplitude and orientation, respectively. Our results provide a roadmap for implementing SU()-symmetric extended Hubbard models with controllable doublon fluctuations, providing access to quantum-simulation in the strongly dipolar regime.
Cite
@article{arxiv.2607.27107,
title = {Engineering SU($N$)-Symmetric Hubbard Models with Microwave-Shielded Dipolar Molecules},
author = {Jing-Lun Li and Ragheed Alhyder and Andreas Schindewolf and Kaden R. A. Hazzard and Mikhail Lemeshko and Georgios M. Koutentakis},
journal= {arXiv preprint arXiv:2607.27107},
year = {2026}
}