Structure of Stellar Remnants with Coupling to a Light Scalar
Christina Gao, Albert Stebbins

TL;DR
This paper investigates how a light scalar field coupled to fermions affects the structure and stability of neutron stars, revealing potential anomalies and setting bounds on the coupling strength based on observable stellar properties.
Contribution
It introduces a simple model showing how Yukawa coupling to a light scalar influences stellar structure, identifying anomalous behaviors and deriving bounds on the effective coupling.
Findings
Yukawa coupling significantly alters stellar equations of state.
Strong coupling leads to instabilities and phase transitions in stellar matter.
Observational constraints limit the effective coupling to prevent anomalies.
Abstract
In this paper we study how a Yukawa coupling of the Standard Model fermions to a light scalar field effects the stellar structure of cold stellar remnants such as neutron stars. We elucidate the stellar structure phenomenology using a simple model of a massive scalar coupled to a single dominant fermion with no other interactions. For a broad scalar mass range ( for neutron stars) we show that the equation-of-state and stellar structure depends only the effective coupling , where is the Yukawa coupling, the fermion mass and is the scalar kinematic mass at nuclear densities. If the Yukawa coupled matter exhibits various anomalous behaviors including hydrodynamic instability, negative pressure, distinct phases (soft and hard) of matter with sharp…
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