Quark Phase Space Distributions in Nuclei
Alexis Nikolakopoulos, Gerald A. Miller

TL;DR
This paper extends a quarkyonic phase model to finite nuclei, analyzing quark phase-space distributions and their implications for nuclear matter, supported by electron scattering data and theoretical models.
Contribution
It introduces a method to compute quark phase-space distributions in finite nuclei using Wigner functions and assesses the quarkyonic phase fraction across different nuclei.
Findings
Large nuclei exhibit a constant quarkyonic phase fraction at high mass numbers.
The suppression of low-momentum nucleons in nuclear matter may also occur in large finite nuclei.
The model's predictions can be tested with specific electron scattering experiments.
Abstract
In [PRC 110, 025201], the authors construct a model for nuclear matter which features a quarkyonic phase. A main feature in this model is that the nucleon occupation is strongly reduced at small momenta. Somewhat surprisingly, this result is supported by data for electron scattering from nuclear matter, where a reduction of the cross section consistent with suppression of nucleons with small momenta is seen. Since nuclear matter data are obtained by extrapolation of electron scattering data on increasingly heavier systems, this feature should manifest at least to some degree in heavy nuclei. To check if this is plausible we extend the approach of [PRC 110, 025201] to finite nuclei by considering the nuclear Wigner distribution. We use non-relativistic and relativistic independent particle models to determine the nuclear Wigner distribution, in addition to the local-density approximation…
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Taxonomy
TopicsNuclear physics research studies · Pulsars and Gravitational Waves Research · High-Energy Particle Collisions Research
