English

Rotational enhancement and stability of protoquark stars during thermal evolution

High Energy Astrophysical Phenomena 2026-01-21 v1 High Energy Physics - Phenomenology Nuclear Theory

Abstract

We present the first systematic study of rigidly rotating protoquark stars based on isentropic equations of state (EOS) within the density-dependent quark mass (DDQM) framework. Using a quasi-static equilibrium approach, we follow the Kelvin--Helmholtz evolution from hot, lepton-rich matter to a cold, catalyzed quark star. Rotation substantially enhances the maximum stable mass (by up to 40%\sim 40\%), equatorial radius, and key rotational observables, with the ratio of rotational kinetic to gravitational potential energy, Tkin/WT_{\rm kin}/|W|, reaching 0.180.18--0.190.19 near the Keplerian limit, indicating a heightened susceptibility to gravitational-wave--emitting instabilities. Thermal evolution introduces a clear ordering: all stellar properties peak during the lepton-rich stages and decrease monotonically as the star cools. Compared to hadronic stars, rotating protoquark stars exhibit larger radii, higher moments of inertia, and stronger quadrupolar deformation, producing a distinct signature in the mass--radius--spin plane that can accommodate objects such as HESS~J1731--347 and PSR~J0740+6620. These results demonstrate that future multimessenger observations must account for both thermal history and rotation to robustly identify quark matter in compact stars.

Cite

@article{arxiv.2601.13941,
  title  = {Rotational enhancement and stability of protoquark stars during thermal evolution},
  author = {Adamu Issifu and Andreas Konstantinou and Prashant Thakur and Tobias Frederico},
  journal= {arXiv preprint arXiv:2601.13941},
  year   = {2026}
}

Comments

12 pages, 1 table, 8 figures