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The $^1$S$_0$ pairing gap in neutron matter

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arxiv 2201.01308 v2 pith:UWB7HRN7 submitted 2022-01-04 nucl-th cond-mat.quant-gas

classification nucl-thcond-mat.quant-gas
keywords pairingresultsneutroncarloinitiomattermonteproperties
verification ladder T0 review T1 audit T2 compute T3 formal
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We report ab initio calculations of the S wave pairing gap in neutron matter calculated using realistic nuclear Hamiltonians that include two- and three-body interactions. We use a trial state, properly optimized to capture the essential pairing correlations, from which we extract ground state properties by means of auxiliary field diffusion Monte Carlo simulations. We extrapolate our results to the thermodynamic limit by studying the finite-size effects in the symmetry-restored projected Bardeen-Cooper-Schrieffer (PBCS) theory and compare our results to other ab initio studies done in the past. Our quantum Monte Carlo results for the pairing gap show a modest suppression with respect to the mean-field BCS values. These results can be connected to cold atom experiments, via the unitarity regime where fermionic superfluidity assumes a unified description, and they are important in the prediction of thermal properties and the cooling of neutron stars.

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    nucl-th 2025-01 conditional novelty 6.0 of 10

    In the large-charge EFT of neutrons, effective-range corrections to the two-point function first appear at second order in the effective range, and the deformed theory has a narrow but usable perturbative window for Q...

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