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Virial coefficients of 1D and 2D Fermi gases by stochastic methods and a semiclassical lattice approximation

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arxiv 1808.07836 v2 pith:HBOGUYUI submitted 2018-08-23 cond-mat.quant-gas

classification cond-mat.quant-gas
keywords coefficientsvirialstochasticapproximationattractivefermifirstgases
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We map out the interaction effects on the first six virial coefficients of one-dimensional Fermi gases with zero-range attractive and repulsive interactions, and the first four virial coefficients of the two-dimensional analog with attractive interactions. To that end, we use two non-perturbative stochastic methods: projection by complex stochastic quantization, which allows us to determine high-order coefficients at weak coupling and estimate the radius of convergence of the virial expansion; and a path-integral representation of the virial coefficients. To complement our numerical calculations, we present leading-order results in a semiclassical lattice approximation, which we find to be surprisingly close to the expected answers.

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  1. Thermodynamics of spin-orbit coupled bosons in two dimensions from complex Langevin

    cond-mat.quant-gas 2019-08 conditional novelty 6.0 of 10

    A complex Langevin simulation of 2D spin-orbit coupled bosons gives a density equation of state where mean-field underestimates density and spin-orbit coupling suppresses pseudo-condensation.

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