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Neutrino-nucleon scattering in the neutrino-sphere

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arxiv 1801.07077 v1 pith:B36HCPXN submitted 2018-01-22 nucl-th astro-ph.HEhep-ph

classification nucl-thastro-ph.HEhep-ph
keywords neutronresponsefactorsfindscatteringstructurecorrelationsdecoupling
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

We calculate the differential scattering rate for thermal neutrinos in a hot and dilute gas of interacting neutrons using linear response theory. The dynamical structure factors for density and spin fluctuations of the strongly interacting neutron matter, expected in the neutrino decoupling regions of supernovae and neutron star mergers, are calculated in the virial expansion for the first time. Correlations due to nucleon-nucleon interactions are taken into account using a pseudo-potential that reproduces measured nucleon-nucleon phase shifts, and we find that attractive s-wave interactions enhance the density response and suppress the spin response of neutron matter. The net effect of neutron correlations is to strongly suppress backscattering. Moreover, we find nearly exact scaling laws for the response functions, valid for the range $T = 5 - 10$ MeV and q < 30 MeV, allowing us to obtain analytic results for the dynamic structure factors at second-order in the fugacity of the neutron gas. We find that the modification of scattering rates depends on the energy and momentum exchanged, implying that dynamical structure factors are essential to describe neutrino decoupling in supernovae and neutron star mergers.

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  1. Gradient-Produced Neutrinos

    hep-ph 2026-04 unverdicted novelty 5.0 of 10

    Steep matter-density gradients in neutron stars can produce neutrino-antineutrino pairs analogous to the Schwinger effect.

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