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  4. Precise control of thermal conductivity at the nanoscale through individual phonon-scattering barriers
 
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2010
Journal Article
Title

Precise control of thermal conductivity at the nanoscale through individual phonon-scattering barriers

Abstract
The ability to precisely control the thermal conductivity (kappa) of a material is fundamental in the development of on-chip heat management or energy conversion applications. Nanostructuring permits a marked reduction of kappa of single-crystalline materials, as recently demonstrated for silicon nanowires. However, silicon-based nanostructured materials with extremely low kappa are not limited to nanowires. By engineering a set of individual phonon-scattering nanodot barriers we have accurately tailored the thermal conductivity of a single-crystalline SiGe material in spatially defined regions as short as similar to 15 nm. Single-barrier thermal resistances between 2 and 4 x 10(-9) m(2) KW-1 were attained, resulting in a room-temperature kappa down to about 0.9Wm(-1)K(-1), in multilayered structures with as little as five barriers. Such low thermal conductivity is compatible with a totally diffuse mismatch model for the barriers, and it is well below the amorphous limit. The results are in agreement with atomistic Green's function simulations.
Author(s)
Pernot, G.
Stoffel, M.
Savic, I.
Pezzoli, F.
Chen, P.
Savelli, G.
Jacquot, A.
Fraunhofer-Institut für Physikalische Messtechnik IPM  
Schumann, J.
Denker, U.
Mönch, I.
Deneke, C.
Schmidt, O.G.
Rampnoux, J.M.
Wang, S.
Plissonnier, M.
Rastelli, A.
Dilhaire, S.
Mingo, N.
Journal
Nature Materials  
Open Access
DOI
10.1038/NMAT2752
Additional link
Full text
Language
English
Fraunhofer-Institut für Physikalische Messtechnik IPM  
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