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Equation of state of non-relativistic matter from automated perturbation theory and complex Langevin

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arxiv 1710.05020 v1 pith:TT2GHKE3 submitted 2017-10-13 cond-mat.quant-gas hep-lat

Equation of state of non-relativistic matter from automated perturbation theory and complex Langevin

classification cond-mat.quant-gas hep-lat
keywords calculationscomplexinteractionlangevinone-dimensionalperturbationpolarizedregime
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We calculate the pressure and density of polarized non-relativistic systems of two-component fermions coupled via a contact interaction at finite temperature. For the unpolarized one-dimensional system with an attractive interaction, we perform a third-order lattice perturbation theory calculation and assess its convergence by comparing with hybrid Monte Carlo. In that regime, we also demonstrate agreement with real Langevin. For the repulsive unpolarized one-dimensional system, where there is a so-called complex phase problem, we present lattice perturbation theory as well as complex Langevin calculations. For our studies, we employ a Hubbard-Stratonovich transformation to decouple the interaction and automate the application of Wick's theorem for perturbative calculations, which generates the diagrammatic expansion at any order. We find excellent agreement between the results from our perturbative calculations and stochastic studies in the weakly interacting regime. In addition, we show predictions for the strong coupling regime as well as for the polarized one-dimensional system. Finally, we show a first estimate for the equation of state in three dimensions where we focus on the polarized unitary Fermi gas.

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