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Transdimensional quantum droplets in an optically trapped Bose mixture

Published 10 Sep 2026 in cond-mat.quant-gas | (2609.11047v1)

Abstract: We study quantum droplets in a symmetric two-component Bose mixture with interspecies pp-wave interactions and a two-dimensional transverse optical lattice. The lattice drives a crossover from an anisotropic three-dimensional gas to weakly coupled one-dimensional tubes. We calculate the ground-state energy and quantum depletion at the Gaussian level and derive their limiting forms. At y=g12/g=−0.95y=g_{12}/g=-0.95, where the bare mean field is repulsive and no free-space droplet exists, the calculated bulk equation of state supports a self-bound minimum across the crossover: a negative lattice contribution at order n<sup>2n<sup>{2} supplies the attraction in the three-dimensional regime, and attractive fluctuations do so in the quasi-one-dimensional regime, with the intermediate, transdimensional range described quantitatively by neither limit. The interspecies pp-wave interaction modifies only the spin branch. In the parameter range studied, increasing its strength lowers the equilibrium density across the crossover, consistently with a weakening of the induced binding.

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