Thermodynamic bounds on generalized transport: From single-molecule to bulk observables

Fuente: arXiv
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Main Authors: Dieball, Cai, Godec, Aljaž
Format: Preprint
Published: 2024
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author Dieball, Cai
Godec, Aljaž
author_facet Dieball, Cai
Godec, Aljaž
contents We prove that the transport of any differentiable scalar observable in $d$-dimensional non-equilibrium systems is bounded from above by the total entropy production scaled by the amount the observation "stretches" microscopic coordinates. The result--a time-integrated generalized speed limit--reflects the thermodynamic cost of transport of observables, and places underdamped and overdamped stochastic dynamics on equal footing with deterministic motion. Our work allows for stochastic thermodynamics to make contact with bulk experiments, and fills an important gap in thermodynamic inference, since microscopic dynamics is, at least for short times, underdamped. Requiring only averages but not sample-to-sample fluctuations, the proven transport bound is practical and applicable not only to single-molecule but also bulk experiments where only averages are observed, which we demonstrate by examples. Our results may facilitate thermodynamic inference on molecular machines without an obvious directionality from bulk observations of transients probed, e.g.\ in time-resolved X-ray scattering.
format Preprint
id arxiv_https___arxiv_org_abs_2403_00048
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Thermodynamic bounds on generalized transport: From single-molecule to bulk observables
Dieball, Cai
Godec, Aljaž
Statistical Mechanics
Soft Condensed Matter
Mathematical Physics
Probability
Biological Physics
We prove that the transport of any differentiable scalar observable in $d$-dimensional non-equilibrium systems is bounded from above by the total entropy production scaled by the amount the observation "stretches" microscopic coordinates. The result--a time-integrated generalized speed limit--reflects the thermodynamic cost of transport of observables, and places underdamped and overdamped stochastic dynamics on equal footing with deterministic motion. Our work allows for stochastic thermodynamics to make contact with bulk experiments, and fills an important gap in thermodynamic inference, since microscopic dynamics is, at least for short times, underdamped. Requiring only averages but not sample-to-sample fluctuations, the proven transport bound is practical and applicable not only to single-molecule but also bulk experiments where only averages are observed, which we demonstrate by examples. Our results may facilitate thermodynamic inference on molecular machines without an obvious directionality from bulk observations of transients probed, e.g.\ in time-resolved X-ray scattering.
title Thermodynamic bounds on generalized transport: From single-molecule to bulk observables
topic Statistical Mechanics
Soft Condensed Matter
Mathematical Physics
Probability
Biological Physics
url https://arxiv.org/abs/2403.00048