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dc.contributor.authorBagchi, Debarsheept_BR
dc.date.accessioned2018-02-28T02:27:46Zpt_BR
dc.date.issued2017pt_BR
dc.identifier.issn1539-3755pt_BR
dc.identifier.urihttp://hdl.handle.net/10183/173025pt_BR
dc.description.abstractWe study energy transport in the paradigmatic Hamiltonian mean-field (HMF) model and other related longrange interacting models using molecular dynamics simulations. We show that energy diffusion in the HMF model is subdiffusive in nature, which confirms a recently obtained intriguing result that, despite being globally interacting, this model is a thermal insulator in the thermodynamic limit. Surprisingly, when additional nearestneighbor interactions are introduced to the HMF model, an energy superdiffusion is observed. We show that these results can be consistently explained by studying energy localization due to thermally generated intrinsic localized excitation modes (discrete breathers) in nonlinear discrete systems. Our analysis for the HMF model can also be readily extended to more generic long-range interacting models where the interaction strength decays algebraically with the (shortest) distance between two lattice sites. This reconciles many of the apparently counterintuitive results presented recently [C. Olivares and C. Anteneodo, Phys. Rev. E 94, 042117 (2016); D. Bagchi, Phys. Rev. E 95, 032102 (2017)] concerning energy transport in two such long-range interacting models.en
dc.format.mimetypeapplication/pdf
dc.language.isoengpt_BR
dc.relation.ispartofPhysical review. E, Statistical, nonlinear, and soft matter physics. Melville. Vol. 96, no. 4 (Oct. 2017), 042121, 7 p.pt_BR
dc.rightsOpen Accessen
dc.subjectDinâmica molecularpt_BR
dc.subjectSistemas hamiltonianospt_BR
dc.subjectOrdem de longo alcancept_BR
dc.titleEnergy transport in the presence of long-range interactionspt_BR
dc.typeArtigo de periódicopt_BR
dc.identifier.nrb001055840pt_BR
dc.type.originEstrangeiropt_BR


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