Asymmetries of thermal processes in open quantum systems

Fuente: arXiv
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Main Authors: Tejero, Álvaro, Sánchez, Rafael, Kaoutit, Laiachi El, Manzano, Daniel, Lasanta, Antonio
Format: Preprint
Published: 2024
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author Tejero, Álvaro
Sánchez, Rafael
Kaoutit, Laiachi El
Manzano, Daniel
Lasanta, Antonio
author_facet Tejero, Álvaro
Sánchez, Rafael
Kaoutit, Laiachi El
Manzano, Daniel
Lasanta, Antonio
contents An intriguing phenomenon in non-equilibrium quantum thermodynamics is the asymmetry of thermal processes. Relaxation to thermal equilibrium is the most important dissipative process, being a key concept for the design of heat engines and refrigerators, contributing to the study of foundational questions of thermodynamics, and being relevant for quantum computing through the process of algorithmic cooling. Despite their importance, the dynamics of these processes are far from being understood. We show that the free relaxation to thermal equilibrium follows intrinsically different paths depending on whether it involves the temperature of the system to increase or to decrease. Our theory is exemplified using the recently developed thermal kinematics based on information geometry theory, utilizing three prototypical examples: a two-level system, the quantum harmonic oscillator, and a trapped quantum Brownian particle, in all cases showing faster heating than cooling under the appropriate conditions. A general understanding is obtained based on the spectral decomposition of the Liouvillian and the spectral gap of reciprocal processes.
format Preprint
id arxiv_https___arxiv_org_abs_2406_19829
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Asymmetries of thermal processes in open quantum systems
Tejero, Álvaro
Sánchez, Rafael
Kaoutit, Laiachi El
Manzano, Daniel
Lasanta, Antonio
Quantum Physics
Statistical Mechanics
An intriguing phenomenon in non-equilibrium quantum thermodynamics is the asymmetry of thermal processes. Relaxation to thermal equilibrium is the most important dissipative process, being a key concept for the design of heat engines and refrigerators, contributing to the study of foundational questions of thermodynamics, and being relevant for quantum computing through the process of algorithmic cooling. Despite their importance, the dynamics of these processes are far from being understood. We show that the free relaxation to thermal equilibrium follows intrinsically different paths depending on whether it involves the temperature of the system to increase or to decrease. Our theory is exemplified using the recently developed thermal kinematics based on information geometry theory, utilizing three prototypical examples: a two-level system, the quantum harmonic oscillator, and a trapped quantum Brownian particle, in all cases showing faster heating than cooling under the appropriate conditions. A general understanding is obtained based on the spectral decomposition of the Liouvillian and the spectral gap of reciprocal processes.
title Asymmetries of thermal processes in open quantum systems
topic Quantum Physics
Statistical Mechanics
url https://arxiv.org/abs/2406.19829