Fluctuation spectra and force generation in nonequilibrium systems

Many biological systems are appropriately viewed as passive inclusions immersed in an active bath: from proteins on active membranes to microscopic swimmers confined by boundaries. The nonequilibrium forces exerted by the active bath on the inclusions or boundaries often regulate function, and such...

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Main Authors: Lee, A, Vella, D, Wettlaufer, J
Format: Journal article
Language:English
Published: National Academy of Sciences 2017
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author Lee, A
Vella, D
Wettlaufer, J
author_facet Lee, A
Vella, D
Wettlaufer, J
author_sort Lee, A
collection OXFORD
description Many biological systems are appropriately viewed as passive inclusions immersed in an active bath: from proteins on active membranes to microscopic swimmers confined by boundaries. The nonequilibrium forces exerted by the active bath on the inclusions or boundaries often regulate function, and such forces may also be exploited in artificial active materials. Nonetheless, the general phenomenology of these active forces remains elusive. We show that the fluctuation spectrum of the active medium, the partitioning of energy as a function of wavenumber, controls the phenomenology of force generation. We find that, for a narrow, unimodal spectrum, the force exerted by a nonequilibrium system on two embedded walls depends on the width and the position of the peak in the fluctuation spectrum, and oscillates between repulsion and attraction as a function of wall separation. We examine two apparently disparate examples: the Maritime Casimir effect and recent simulations of active Brownian particles. A key implication of our work is that important nonequilibrium interactions are encoded within the fluctuation spectrum. In this sense, the noise becomes the signal.
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spelling oxford-uuid:df0e05ee-6107-4588-9a9e-0c69e639c9ef2022-03-27T09:36:34ZFluctuation spectra and force generation in nonequilibrium systemsJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:df0e05ee-6107-4588-9a9e-0c69e639c9efEnglishSymplectic Elements at OxfordNational Academy of Sciences2017Lee, AVella, DWettlaufer, JMany biological systems are appropriately viewed as passive inclusions immersed in an active bath: from proteins on active membranes to microscopic swimmers confined by boundaries. The nonequilibrium forces exerted by the active bath on the inclusions or boundaries often regulate function, and such forces may also be exploited in artificial active materials. Nonetheless, the general phenomenology of these active forces remains elusive. We show that the fluctuation spectrum of the active medium, the partitioning of energy as a function of wavenumber, controls the phenomenology of force generation. We find that, for a narrow, unimodal spectrum, the force exerted by a nonequilibrium system on two embedded walls depends on the width and the position of the peak in the fluctuation spectrum, and oscillates between repulsion and attraction as a function of wall separation. We examine two apparently disparate examples: the Maritime Casimir effect and recent simulations of active Brownian particles. A key implication of our work is that important nonequilibrium interactions are encoded within the fluctuation spectrum. In this sense, the noise becomes the signal.
spellingShingle Lee, A
Vella, D
Wettlaufer, J
Fluctuation spectra and force generation in nonequilibrium systems
title Fluctuation spectra and force generation in nonequilibrium systems
title_full Fluctuation spectra and force generation in nonequilibrium systems
title_fullStr Fluctuation spectra and force generation in nonequilibrium systems
title_full_unstemmed Fluctuation spectra and force generation in nonequilibrium systems
title_short Fluctuation spectra and force generation in nonequilibrium systems
title_sort fluctuation spectra and force generation in nonequilibrium systems
work_keys_str_mv AT leea fluctuationspectraandforcegenerationinnonequilibriumsystems
AT vellad fluctuationspectraandforcegenerationinnonequilibriumsystems
AT wettlauferj fluctuationspectraandforcegenerationinnonequilibriumsystems