Temporal reversibility of reactive systems out of equilibrium: Molecular dynamics simulation

Fuente: arXiv
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Main Authors: Politano, O., Garcia, Alejandro L., Baras, F., Mansour, M. Malek
Format: Preprint
Published: 2024
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author Politano, O.
Garcia, Alejandro L.
Baras, F.
Mansour, M. Malek
author_facet Politano, O.
Garcia, Alejandro L.
Baras, F.
Mansour, M. Malek
contents The second law of thermodynamics states that entropy production in macroscopic systems is non-negative, reaching zero only at thermodynamic equilibrium. As a corollary, this implies that the state trajectory of macroscopic systems is inherently time-irreversible under out-of-equilibrium conditions. However, over the past half-century, various studies have shown that this principle does not universally apply to the composition sample paths of certain isothermal reactive systems. Theoretical frameworks leading to this surprising observation primarily focus on perfectly homogeneous systems (often referred to as zero-dimensional systems), which inherently exclude the effects of local fluctuations. This oversimplification may account for the paradoxical theoretical predictions. In the absence of relevant experimental data, this paper seeks to explore this phenomenon through microscopic simulations.
format Preprint
id arxiv_https___arxiv_org_abs_2410_19578
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Temporal reversibility of reactive systems out of equilibrium: Molecular dynamics simulation
Politano, O.
Garcia, Alejandro L.
Baras, F.
Mansour, M. Malek
Statistical Mechanics
Chemical Physics
The second law of thermodynamics states that entropy production in macroscopic systems is non-negative, reaching zero only at thermodynamic equilibrium. As a corollary, this implies that the state trajectory of macroscopic systems is inherently time-irreversible under out-of-equilibrium conditions. However, over the past half-century, various studies have shown that this principle does not universally apply to the composition sample paths of certain isothermal reactive systems. Theoretical frameworks leading to this surprising observation primarily focus on perfectly homogeneous systems (often referred to as zero-dimensional systems), which inherently exclude the effects of local fluctuations. This oversimplification may account for the paradoxical theoretical predictions. In the absence of relevant experimental data, this paper seeks to explore this phenomenon through microscopic simulations.
title Temporal reversibility of reactive systems out of equilibrium: Molecular dynamics simulation
topic Statistical Mechanics
Chemical Physics
url https://arxiv.org/abs/2410.19578