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Density instabilities and thermal stabilization of phase separated states in dipolar lattice bosons

Yaghmorassene Hebib, Stefano Peaquin, Chao Zhang, Vittorio Penna, Barbara Capogrosso-Sansone

cond-mat.quant-gasarXiv:2608.07608

Abstract

Recent advances in realizing nearly degenerate dipolar gases in optical lattices have enabled the study of quantum systems with long-range anisotropic interactions. Here, we investigate hard-core dipolar bosons on a two-dimensional square lattice described by an extended Bose--Hubbard model. Using path-integral quantum Monte Carlo simulations at fixed azimuthal angle φ=45, we investigate density instabilities arising from first-order phase transitions. We start by mapping the ground-state phase diagram at half filling as a function of dipolar interaction strength and polar angle θ. For weak interactions, the system remains superfluid for all θ. Above a critical interaction strength, the superfluid phase becomes unstable and gives way to checkerboard, stripe, or incompressible phases depending on θ. For θ 62, we find that half filling becomes unstable and only the empty state, n=0, and the fully filled state, n=1, are stable. Unlike recent experimental reports of a self-bound insulator at half filling, the homogeneous ground state does not support such a phase, but instead exhibits a direct first-order transition between n=0 and n=1. At finite temperature, thermal fluctuations shift the onset of density instabilities to larger θ and stabilize intermediate fillings in the regime where half filling is unstable in the ground state. This leads to phase-separated states consisting of empty and fully filled regions that resemble the experimentally observed "self-bound insulator." In a harmonic trap, similar structures also emerge from phase coexistence associated with the underlying first-order transition.

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