Two first-order phase transitions in hybrid compact stars: higher-order multiplet stars, reaction modes and intermediate conversion speeds
Peter B. Rau, Armen Sedrakian

TL;DR
This paper investigates the stability and oscillation modes of hybrid compact stars with multiple phase transitions, revealing new stable configurations and reaction modes depending on the phase conversion rates at the interfaces.
Contribution
It introduces a detailed analysis of stability criteria for hybrid stars with nested quark phases, considering different conversion speeds and their impact on stellar stability and oscillation modes.
Findings
Stable multiplet stars beyond triplets identified.
Slow conversion rates stabilize stars with negative mass-density derivative.
Reaction modes are characterized for rapid phase transitions.
Abstract
We study compact stars with hybrid equations of state consisting of a nuclear outer region and two nested quark phases, each separated from the lower density phase by a strong first-order phase transition. The stability of these models is determined by calculating their radial oscillation modes with different conversion rates between adjacent phases and hence junction conditions for the modes at the phase separation interface between them. In the case when the timescale of transition is faster than the period of oscillations, we recover the traditional stability criterion implying that on the stable branch(es), where is the mass and is the central density. In the opposite limit of slow conversion, we find stable stellar multiplets beyond triplets consisting of stars that are stable by the usual criterion plus slow-conversion (denoted by )…
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Taxonomy
TopicsPulsars and Gravitational Waves Research · Stellar, planetary, and galactic studies · High-pressure geophysics and materials
