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research article

High Thermal Conductivity in Short-Period Superlattices

Garg, Jivtesh
•
Bonini, Nicola
•
Marzari, Nicola  
2011
Nano Letters

The thermal conductivity of ideal short-period superlattices is computed using harmonic and anharmonic force constants derived from density-functional perturbation theory and by solving the Boltzmann transport equation in the single-mode relaxation time approximation, using silicon germanium as a paradigmatic case. We show that in the limit of small superlattice period the computed thermal conductivity of the superlattice can exceed that of both the constituent materials. This is found to be due to a dramatic reduction in the scattering of acoustic phonons by optical phonons, leading to very long phonon lifetimes. By variation of the mass mismatch between the constituent materials in the superlattice, it is found that this enhancement in thermal conductivity can be engineered, providing avenues to achieve high thermal conductivities in nanostructured materials.

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Type
research article
DOI
10.1021/nl202186y
Web of Science ID

WOS:000297950200007

Author(s)
Garg, Jivtesh
Bonini, Nicola
Marzari, Nicola  
Date Issued

2011

Publisher

American Chemical Society (ACS)

Published in
Nano Letters
Volume

11

Start page

5135

End page

5141

Subjects

High thermal conductivity

•

silicon-germanium superlattices

•

anharmonic phonon scattering

•

long phonon lifetimes

•

Strained-Layer Superlattices

•

Si/Ge Superlattices

•

Phonon Dispersions

•

Ge-Si

•

Semiconductors

•

Transport

•

Crystals

•

Order

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
THEOS  
Available on Infoscience
June 12, 2012
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/81559
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