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Cooperative surmounting of bottlenecks

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dc.contributor.author Hennig, D.
dc.contributor.author Mulhern, C.
dc.contributor.author Schimansky-Geier, L.
dc.contributor.author Tsironis, G.P.
dc.contributor.author Hänggi, P.
dc.creator D., Hennig
dc.date.accessioned 2018-01-04T09:20:04Z
dc.date.available 2018-01-04T09:20:04Z
dc.date.issued 2015-07-20
dc.identifier DOI:10.1016/j.physrep.2015.05.003
dc.identifier.citation D. Hennig, C. Mulhern, L. Schimansky-Geier, G.P. Tsironis, P. Hänggi, Cooperative surmounting of bottlenecks, In Physics Reports, Volume 586, 2015, Pages 1-51 en_US
dc.identifier.issn 03701573
dc.identifier.uri https://www.sciencedirect.com/science/article/pii/S0370157315002410
dc.identifier.uri http://nur.nu.edu.kz/handle/123456789/3097
dc.description.abstract Abstract The physics of activated escape of objects out of a metastable state plays a key role in diverse scientific areas involving chemical kinetics, diffusion and dislocation motion in solids, nucleation, electrical transport, motion of flux lines superconductors, charge density waves, and transport processes of macromolecules and astrophysics, to name but a few. The underlying activated processes present the multidimensional extension of the Kramers problem of a single Brownian particle. In comparison to the latter case, however, the dynamics ensuing from the interactions of many coupled units can lead to intriguing novel phenomena that are not present when only a single degree of freedom is involved. In this review we report on a variety of such phenomena that are exhibited by systems consisting of chains of interacting units in the presence of potential barriers.In the first part we consider recent developments in the case of a deterministic dynamics driving cooperative escape processes of coupled nonlinear units out of metastable states. The ability of chains of coupled units to undergo spontaneous conformational transitions can lead to a self-organised escape. The mechanism at work is that the energies of the units become re-arranged, while keeping the total energy conserved, in forming localised energy modes that in turn trigger the cooperative escape. We present scenarios of significantly enhanced noise-free escape rates if compared to the noise-assisted case.The second part of the review deals with the collective directed transport of systems of interacting particles overcoming energetic barriers in periodic potential landscapes. Escape processes in both time-homogeneous and time-dependent driven systems are considered for the emergence of directed motion. It is shown that ballistic channels immersed in the associated mixed high-dimensional phase space are at the source for the directed long-range transport. Open problems and future directions are discussed in order to invigorate readers to engage in their own research. en_US
dc.language.iso en en_US
dc.publisher Physics Reports en_US
dc.relation.ispartof Physics Reports
dc.subject Nonlinear dynamics en_US
dc.subject Stochastic dynamics en_US
dc.subject Deterministic escape en_US
dc.subject Thermally activated escape en_US
dc.subject First-passage phenomena en_US
dc.subject Fluctuation phenomena en_US
dc.subject Transport dynamics en_US
dc.subject Cooperative effects en_US
dc.subject Hamiltonian systems en_US
dc.subject Chaos en_US
dc.subject Negative mobility en_US
dc.title Cooperative surmounting of bottlenecks en_US
dc.type Article en_US
dc.rights.license Copyright © 2015 Elsevier B.V. All rights reserved.
elsevier.identifier.doi 10.1016/j.physrep.2015.05.003
elsevier.identifier.eid 1-s2.0-S0370157315002410
elsevier.identifier.pii S0370-1573(15)00241-0
elsevier.identifier.scopusid 84931563990
elsevier.volume 586
elsevier.issue.name Cooperative surmounting of bottlenecks
elsevier.coverdate 2015-07-20
elsevier.coverdisplaydate 20 July 2015
elsevier.startingpage 1
elsevier.endingpage 51
elsevier.openaccess 0
elsevier.openaccessarticle false
elsevier.openarchivearticle false
elsevier.teaser The physics of activated escape of objects out of a metastable state plays a key role in diverse scientific areas involving chemical kinetics, diffusion and dislocation motion in solids, nucleation,...
elsevier.aggregationtype Journal
workflow.import.source science


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