Nucleon axial-vector coupling constant in magnetar environments
arXiv:2308.05663 · doi:10.1103/PhysRevD.108.074024
Abstract
The nucleon axial-vector coupling constant is studied in the presence of an external magnetic field, and in dense nuclear environments, to emulate nuclear matter in magnetars. For this purpose we use QCD finite energy sum rules for two-current and three-current correlators, the former involving nucleon-nucleon correlators and the latter involving proton-axial-neutron currents. As a result, the axial-vector coupling constant decreases both with baryon density as well as with magnetic field. The axial-vector coupling evaluated with baryon density near the nuclear density leads to . In the presence of magnetic fields decreases in general, but does not show significant changes.
8 pages, 6 figures. Minor corrections and one reference added. To be published in Phys. Rev. D
References in corpus (6)
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- Axial coupling constant in a magnetic background
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Cited by in corpus (7)
- Nuclear medium meson structures from the Schwinger proper-time Nambu--Jona-Lasinio model
- Do Finite Density Effects Jeopardize Axion Nucleophobia in Supernovae?
- Weak interaction axial form factors of the octet baryons in nuclear medium
- Strongly interacting matter in extreme magnetic fields
- Quark anomalous magnetic moment in an extreme magnetic background from perturbative QCD
- The Yukawa potential under weak magnetic field
- Finite-energy sum rules at finite chemical potential and zero temperature