Elementary excitations in homogeneous superfluid neutron star matter: Role of the proton component
Marcello Baldo, Camille Ducoin

TL;DR
This paper investigates the low-energy density modes related to the proton component in superfluid neutron star matter, revealing a pseudo-Goldstone mode due to Coulomb screening, which impacts neutrino emission and stellar evolution.
Contribution
It introduces a generalized Random Phase Approximation framework that accounts for superfluidity and Coulomb screening, identifying a pseudo-Goldstone mode in neutron star matter.
Findings
Identification of a pseudo-Goldstone mode in proton superfluid matter
Coulomb screening modifies the mode velocity
Proton pairing influences the excitation spectrum
Abstract
The thermal evolution of neuron stars depends on the elementary excitations affecting the stellar matter. In particular, the low-energy excitations, whose energy is proportional to the transfered momentum, can play a major role in the emission and propagation of neutrinos. In this paper, we focus on the density modes associated with the proton component in the homogeneous matter of the outer core of neutron stars (at density between one and three times the nuclear saturation density, where the baryonic constituants are expected to be neutrons and protons). In this region, it is predicted that the protons are superconductor. We study the respective roles of the proton pairing and Coulomb interaction in determining the properties of the modes associated with the proton component. This study is performed in the framework of the Random Phase Approximation, generalized in order to describe…
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