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White Dwarf Structure and Binary Inspiral Gravitational Waves from Quantum Hadrodynamics

Nuclear Theory 2025-08-18 v2 High Energy Astrophysical Phenomena

Abstract

White dwarfs, one of the compact objects in the universe, play a crucial role in astrophysical research and provide a platform for exploring nuclear physics. In this work, we extend the relativistic mean field approach by using a Walecka-type quantum hadrodynamics model to capture the intricate structure of white dwarfs. We calculate nuclear properties, Coulomb energy, and photon energy within white dwarfs in a unified framework. By carefully calibrating the model parameters to align with nuclear matter properties, we successfully reproduce the structures of several elements in white dwarfs, such as the isotopes of C\rm C and 16O^{16}\rm O, except for the unnaturally deeply bound state 4^4He. Furthermore, we predict the characteristics of white dwarfs composed of atom-like units and the gravitational waves stemming from binary white dwarf inspirals incorporating tidal deformability contributions up to the 2.5 post-Newtonian order. These results shed light on the structure of white dwarfs and provide valuable information for future gravitational wave detection. This methodological advancement allows for a cohesive analysis of white dwarfs, neutron stars, and the nuclear pasta within a unified theoretical framework.

Keywords

Cite

@article{arxiv.2410.06088,
  title  = {White Dwarf Structure and Binary Inspiral Gravitational Waves from Quantum Hadrodynamics},
  author = {Ling-Jun Guo and Yao Ma and Yong-Liang Ma and Ruo-Xi Wu and Yue-Liang Wu},
  journal= {arXiv preprint arXiv:2410.06088},
  year   = {2025}
}

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R2 v1 2026-06-28T19:13:05.526Z