Green Function, Quasi-Classical Langevin and Kubo-Greenwood Methods in Quantum Thermal Transport

dc.contributor.author Sevinçli, Haldun
dc.contributor.author Roche, S.
dc.contributor.author Cuniberti, G.
dc.contributor.author Brandbyge, M.
dc.contributor.author Gutierrez, R.
dc.contributor.author Sandonas, L. Medrano
dc.coverage.doi 10.1088/1361-648X/ab119a
dc.date.accessioned 2020-07-25T22:12:44Z
dc.date.available 2020-07-25T22:12:44Z
dc.date.issued 2019
dc.description.abstract With the advances in fabrication of materials with feature sizes at the order of nanometers, it has been possible to alter their thermal transport properties dramatically. Miniaturization of device size increases the power density in general, hence faster electronics require better thermal transport, whereas better thermoelectric applications require the opposite. Such diverse needs bring new challenges for material design. Shrinkage of length scales has also changed the experimental and theoretical methods to study thermal transport. Unsurprisingly, novel approaches have emerged to control phonon flow. Besides, ever increasing computational power is another driving force for developing new computational methods. In this review, we discuss three methods developed for computing vibrational thermal transport properties of nano-structured systems, namely Green function, quasi-classical Langevin, and Kubo-Green methods. The Green function methods are explained using both nonequilibrium expressions and the Landauer-type formula. The partitioning scheme, decimation techniques and surface Green functions are reviewed, and a simple model for reservoir Green functions is shown. The expressions for the Kubo-Greenwood method are derived, and Lanczos tridiagonalization, continued fraction and Chebyshev polynomial expansion methods are discussed. Additionally, the quasi-classical Langevin approach, which is useful for incorporating phonon-phonon and other scatterings is summarized. en_US
dc.identifier.doi 10.1088/1361-648X/ab119a
dc.identifier.issn 0953-8984
dc.identifier.issn 1361-648X
dc.identifier.scopus 2-s2.0-85065809227
dc.identifier.uri https://doi.org/10.1088/1361-648X/ab119a
dc.identifier.uri https://hdl.handle.net/11147/9505
dc.language.iso en en_US
dc.publisher IOP Publishing en_US
dc.relation.ispartof Journal of Physics Condensed Matter en_US
dc.rights info:eu-repo/semantics/openAccess en_US
dc.subject Quantum thermal transport en_US
dc.subject Green function method en_US
dc.subject Kubo-Greenwood method en_US
dc.subject Quasi-classical Langevin method en_US
dc.title Green Function, Quasi-Classical Langevin and Kubo-Greenwood Methods in Quantum Thermal Transport en_US
dc.type Article en_US
dspace.entity.type Publication
gdc.author.institutional Sevinçli, Haldun
gdc.bip.impulseclass C4
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gdc.bip.popularityclass C4
gdc.coar.access open access
gdc.coar.type text::journal::journal article
gdc.collaboration.industrial false
gdc.description.department İzmir Institute of Technology. Materials Science and Engineering en_US
gdc.description.issue 27 en_US
gdc.description.publicationcategory Makale - Uluslararası Hakemli Dergi - Kurum Öğretim Elemanı en_US
gdc.description.scopusquality Q2
gdc.description.volume 31 en_US
gdc.description.wosquality Q3
gdc.identifier.openalex W2940664244
gdc.identifier.pmid 31026228
gdc.identifier.wos WOS:000466267400002
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gdc.index.type PubMed
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gdc.oaire.keywords Quasi-classical Langevin method
gdc.oaire.keywords Green function method
gdc.oaire.keywords Quantum thermal transport
gdc.oaire.keywords Quasi-classical Langevin
gdc.oaire.keywords Kubo–Greenwood methods
gdc.oaire.keywords Kubo–Greenwood method
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gdc.oaire.sciencefields 0103 physical sciences
gdc.oaire.sciencefields 02 engineering and technology
gdc.oaire.sciencefields 0210 nano-technology
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gdc.opencitations.count 19
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