English

Superfluid-Mott transition in a frustrated triangular optical lattice

Quantum Gases 2025-09-25 v1 Statistical Mechanics Strongly Correlated Electrons Quantum Physics

Abstract

Geometric frustration can significantly increase the complexity and richness of many-body physics and, for instance, suppress antiferromagnetic order in quantum magnets. Here, we employ ultracold bosonic 39^{39}K atoms in a triangular optical lattice to study geometric frustration by stabilizing the gas at the frustrated upper band edge using negative absolute temperatures. We find that geometric frustration suppresses the critical interaction strength for the (chiral-)superfluid to Mott insulator (χ\chi-SF-MI) quantum phase transition by a factor of 2.7(3) and furthermore changes the critical dynamics of the transition. Although the emergence of coherence during fast ramps from MI to the (χ\chi-)SF regime is continuous in both cases, for ramps longer than a few tunnelling times, significant differences emerge. In the \frs case, no long-range order emerges on the studied timescales, highlighting a significantly reduced rate or even saturation of the emerging coherence. This work opens the door to quantum simulations of frustrated systems that are often intractable by classical simulations.

Keywords

Cite

@article{arxiv.2509.20352,
  title  = {Superfluid-Mott transition in a frustrated triangular optical lattice},
  author = {Mehedi Hasan and Luca Donini and Sompob Shanokprasith and Daniel Braund and Tobias Marozsak and Moritz Epping and Daniel Reed and Max Melchner and Tiffany Harte and Ulrich Schneider},
  journal= {arXiv preprint arXiv:2509.20352},
  year   = {2025}
}

Comments

7 pages, 4 figures, plus Methods

R2 v1 2026-07-01T05:54:34.203Z