Compact stars in the Einstein dark energy model
Zahra Haghani, Tiberiu Harko

TL;DR
This paper explores how a vector field inspired by Einstein's 1919 theory affects the structure and properties of compact stars, revealing a broader range of stellar configurations and more massive stars compared to general relativity.
Contribution
It introduces a vector-type dark energy model based on Einstein's 1919 theory and analyzes its impact on compact star properties using various equations of state.
Findings
Einstein dark energy model predicts more massive compact stars.
The model allows for a wider variety of stellar structures.
Numerical solutions show significant differences from general relativity predictions.
Abstract
We investigate the properties of high density compact objects in a vector type theory, inspired by Einstein's 1919 theory of elementary particles, in which Einstein assumed that elementary particles are held together by gravitational as well as electromagnetic type forces. From a modern perspective, Einstein's theory can be interpreted as a vector type model, with the gravitational action constructed as a linear combination of the Ricci scalar, of the trace of the matter energy-momentum tensor, and of a massive self-interacting vector type field. To obtain the properties of stellar models we consider the field equations for a static, spherically symmetric system, and we investigate numerically their solutions for different equations of state of quark and neutron matter, by assuming that the self-interaction potential of the vector field either vanishes or is quadratic in the vector…
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