Phonon heat transport in superlattices: Case of Si/SiGe and SiGe/SiGe superlattices

dc.contributor.authorHijazi, M.
dc.contributor.authorKazan, Michel
dc.contributor.departmentDepartment of Physics
dc.contributor.facultyFaculty of Arts and Sciences (FAS)
dc.contributor.institutionAmerican University of Beirut
dc.date.accessioned2025-01-24T11:25:05Z
dc.date.available2025-01-24T11:25:05Z
dc.date.issued2016
dc.description.abstractWe present a predictive Boltzmann model for the cross-plane thermal conductivity in superlattices. The developed model considers particle-like phonons exhibiting wave characteristics at the interfaces and makes the assumption that the phonon heat transport in a superlattice has a mixed character. Exact Boltzmann equation comprising spatial dependence of phonon distribution function is solved to yield a general expression for the lattice thermal conductivity. The intrinsic phonon scattering rates are calculated from Fermi's golden rule, and the model vibrational parameters are derived as functions of temperature and crystallographic directions by using elasticity theory-based lattice dynamics approach. The developed theory is then adapted to calculate the cross-plane thermal conductivity of superlattices. It is assumed that the phonons of wavelengths comparable or smaller than the superlattice period or the root mean square irregularity at the superlattice interfaces may be subject to a resistive scattering mechanism at the interfaces, whereas the phonons of wavelengths much greater than the superlattice period undergo ballistic transmission through the interfaces and obey dispersion relations determined by the Brillouin zone folding effects of the superlattice. The accuracy of the concept of mixed phonon transport regime in superlattices is demonstrated clearly with reference to experimental measurements regarding the effects of period thickness and temperature on the cross-plane thermal conductivity of Si/Si0.7Ge0.3 and Si0.84Ge0.16/Si0.76Ge0.3 superlattices. © 2016 Author(s).
dc.identifier.doihttps://doi.org/10.1063/1.4955052
dc.identifier.eid2-s2.0-84977278381
dc.identifier.urihttp://hdl.handle.net/10938/26199
dc.language.isoen
dc.publisherAmerican Institute of Physics Inc.
dc.relation.ispartofAIP Advances
dc.sourceScopus
dc.subjectBoltzmann equation
dc.subjectCrystal lattices
dc.subjectDistribution functions
dc.subjectGermanium
dc.subjectHeat transfer
dc.subjectLattice theory
dc.subjectPhonons
dc.subjectSilicon
dc.subjectCrystallographic directions
dc.subjectLattice thermal conductivity
dc.subjectPhonon distribution function
dc.subjectScattering mechanisms
dc.subjectSuperlattice periods
dc.subjectThermal conductivity of superlattices
dc.subjectVibrational parameters
dc.subjectWave characteristics
dc.subjectThermal conductivity
dc.titlePhonon heat transport in superlattices: Case of Si/SiGe and SiGe/SiGe superlattices
dc.typeArticle

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