The Delta-isobar masquerade: intrahadronic phase transitions and their quark-mimicking signatures in neutron stars
Martin O. Canullan-Pascual, Germ\'an Lugones, Ignacio F. Ranea-Sandoval, Milva G. Orsaria

TL;DR
This paper explores how certain intrahadronic phase transitions involving $ riangle$-resonances in neutron stars can mimic signatures traditionally attributed to quark deconfinement, challenging the uniqueness of gravitational-wave signals as indicators of quark matter.
Contribution
It demonstrates that purely hadronic phase transitions can produce observable signatures similar to quark deconfinement, including mass-radius features and $g$-mode frequencies, complicating the identification of quark matter.
Findings
Neutron star models with $ riangle$-resonances satisfy current observational constraints.
Computed $g$-mode frequencies overlap with those expected from quark phase transitions.
Purely hadronic mechanisms can produce signatures previously attributed to quark matter.
Abstract
We investigate the conditions under which isobars trigger a first-order phase transition within purely hadronic neutron-star matter, using the SW4L relativistic mean-field parametrization. For scalar-vector coupling differences and , the onset of resonances produces a van der Waals-like instability driven by a self-amplifying feedback in the scalar meson sector, in which the particle fraction acts as the order parameter of a Landau-type transition. A Maxwell construction yields a sharp density discontinuity at baryon densities -, separating a -free outer core from a -rich inner core. The resulting neutron-star sequences satisfy all current multimessenger constraints: maximum masses $M_{\rm max} \approx…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Cold Atom Physics and Bose-Einstein Condensates · High-Energy Particle Collisions Research
