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Thermal conductivity of indium arsenide nanowires with wurtzite and zinc blende phases

dc.contributor.authorZhou, Feng
dc.contributor.authorMoore, Arden L
dc.contributor.authorBolinsson, Jessica
dc.contributor.authorPersson, Ann
dc.contributor.authorFröberg, Linus E
dc.contributor.authorPettes, Michael T
dc.contributor.authorKong, Huijun
dc.contributor.authorCaroff, Philippe
dc.contributor.authorRabenberg, Lew
dc.contributor.authorStewart, Derek A
dc.contributor.authorMingo, Natalio
dc.contributor.authorDick, Kimberley A.
dc.contributor.authorSamuelson, Lars
dc.contributor.authorLinke, Heiner
dc.contributor.authorShi, Li
dc.date.accessioned2015-12-13T22:42:01Z
dc.date.issued2011
dc.date.updated2015-12-11T10:05:06Z
dc.description.abstractThe thermal conductivity of wurtzite and zinc blende indium arsenide nanowires was measured using a microfabricated device, with the crystal structure of each sample controlled during growth and determined by transmission electron microscopy. Nanowires of both phases showed a reduction of the thermal conductivity by a factor of 2 or more compared to values reported for zinc blende indium arsenide bulk crystals within the measured temperature range. Theoretical models were developed to analyze the measurement results and determine the effect of phase on phonon transport. Branch-specific phonon dispersion data within the discretized first Brillouin zone were calculated from first principles and used in numerical models of volumetric heat capacity and thermal conductivity. The combined results of the experimental and theoretical studies suggest that wurtzite indium arsenide possesses similar volumetric heat capacity, weighted average group velocity, weighted average phonon-phonon scattering mean free path, and anharmonic scattering-limited thermal conductivity as the zinc blende phase. Hence, we attribute the differing thermal conductivity values observed in the indium arsenide nanowires of different phases to differences in the surface scattering mean free paths between the nanowire samples.
dc.identifier.issn1098-0121
dc.identifier.urihttp://hdl.handle.net/1885/78779
dc.publisherAmerican Physical Society
dc.sourcePhysical Review B: Condensed Matter and Materials
dc.titleThermal conductivity of indium arsenide nanowires with wurtzite and zinc blende phases
dc.typeJournal article
local.bibliographicCitation.issue20
local.bibliographicCitation.lastpage10
local.bibliographicCitation.startpage1
local.contributor.affiliationZhou, Feng, The University of Texas at Austin
local.contributor.affiliationMoore, Arden L, The University of Texas at Austin
local.contributor.affiliationBolinsson, Jessica, Lund University
local.contributor.affiliationPersson, Ann, Lund University
local.contributor.affiliationFröberg, Linus E, Lund University
local.contributor.affiliationPettes, Michael T, The University of Texas at Austin
local.contributor.affiliationKong, Huijun, The University of Texas at Austin
local.contributor.affiliationCaroff, Philippe, College of Physical and Mathematical Sciences, ANU
local.contributor.affiliationRabenberg, Lew, The University of Texas at Austin
local.contributor.affiliationStewart, Derek A, Cornell University
local.contributor.affiliationMingo, Natalio, CEA, LITEN
local.contributor.affiliationDick, Kimberley A., Lund University
local.contributor.affiliationSamuelson, Lars, Lund University
local.contributor.affiliationLinke, Heiner, Lund University
local.contributor.affiliationShi, Li, The University of Texas at Austin
local.contributor.authoruidCaroff, Philippe, u5309137
local.description.embargo2037-12-31
local.description.notesImported from ARIES
local.identifier.absfor100706 - Nanofabrication, Growth and Self Assembly
local.identifier.absfor020406 - Surfaces and Structural Properties of Condensed Matter
local.identifier.ariespublicationf5625xPUB7362
local.identifier.citationvolume83
local.identifier.doi10.1103/PhysRevB.83.205416
local.identifier.scopusID2-s2.0-79961110456
local.type.statusPublished Version

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