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Journal article · Preprint article

Phonon thermal conductivity of scandium nitride for thermoelectrics from first-principles calculations and thin-film growth

From

Linköping University1

National University of Singapore2

Department of Energy Conversion and Storage, Technical University of Denmark3

Ceramic Engineering & Science, Department of Energy Conversion and Storage, Technical University of Denmark4

The knowledge of lattice thermal conductivity of materials under realistic conditions is vitally important since many modern technologies require either high or low thermal conductivity. Here, we propose a theoretical model for determining lattice thermal conductivity, which takes into account the effect of microstructure.

It is based on ab initio description that includes the temperature dependence of the interatomic force constants and treats anharmonic lattice vibrations. We choose ScN as a model system, comparing the computational predictions to the experimental data by time-domain thermoreflectance. Our experimental results show a trend of reduction in lattice thermal conductivity with decreasing domain size predicted by the theoretical model.

These results suggest a possibility to control thermal conductivity by microstructural tailoring and provide a predictive tool for the effect of the microstructure on the lattice thermal conductivity of materials based on ab initio calculations.

Language: English
Publisher: American Physical Society
Year: 2017
ISSN: 24699969 , 24699950 , 1550235x and 10980121
Types: Journal article and Preprint article
DOI: 10.1103/PhysRevB.96.195417
ORCIDs: Van Nong, Ngo

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