Phase Transition and Thermodynamic Stability in an Entropy-driven Universe

Fuente: arXiv
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Main Author: Chakrabarti, Soumya
Format: Preprint
Published: 2024
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author Chakrabarti, Soumya
author_facet Chakrabarti, Soumya
contents Motivated by the notion that the mathematics of gravity can be reproduced from a statistical requirement of maximal entropy, we study the consequence of introducing an entropic source term in the Einstein-Hilbert action. For a spatially homogeneous cosmological system driven by this entropic source and enveloped by a time evolving apparent horizon, we formulate a modified version of the second law of thermodynamics. An explicit differential equation governing the internal entropy profile is found. Using a Hessian matrix analysis of the internal entropy we check the thermodynamic stability for a ΛCDM cosmology, a unified cosmic expanson and a non-singular ekpyrotic bounce. We find the mathematical condition for a second order phase transition during these evolutions from the divergence of specific heat at constant volume. The condition is purely kinematic and quadratic in nature, relating the deceleration parameter and the jerk parameter that chalks out an interesting curve on the parameter space. This condition is valid even without the entropic source term and may be a general property of any phase transition.
format Preprint
id arxiv_https___arxiv_org_abs_2403_12622
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Phase Transition and Thermodynamic Stability in an Entropy-driven Universe
Chakrabarti, Soumya
General Relativity and Quantum Cosmology
High Energy Physics - Theory
Mathematical Physics
Pattern Formation and Solitons
Motivated by the notion that the mathematics of gravity can be reproduced from a statistical requirement of maximal entropy, we study the consequence of introducing an entropic source term in the Einstein-Hilbert action. For a spatially homogeneous cosmological system driven by this entropic source and enveloped by a time evolving apparent horizon, we formulate a modified version of the second law of thermodynamics. An explicit differential equation governing the internal entropy profile is found. Using a Hessian matrix analysis of the internal entropy we check the thermodynamic stability for a ΛCDM cosmology, a unified cosmic expanson and a non-singular ekpyrotic bounce. We find the mathematical condition for a second order phase transition during these evolutions from the divergence of specific heat at constant volume. The condition is purely kinematic and quadratic in nature, relating the deceleration parameter and the jerk parameter that chalks out an interesting curve on the parameter space. This condition is valid even without the entropic source term and may be a general property of any phase transition.
title Phase Transition and Thermodynamic Stability in an Entropy-driven Universe
topic General Relativity and Quantum Cosmology
High Energy Physics - Theory
Mathematical Physics
Pattern Formation and Solitons
url https://arxiv.org/abs/2403.12622