Electron and phonon thermal conductivity in high entropy carbides with variable carbon content
Christina M. Rost
1, 2
,
T Borman
3
,
Mohammad Ashraf HOSSAIN
3
,
Mina Lim
4
,
Kathleen F Quiambao Tomko
5
,
John Tomko
5
,
Donald W. Brenner
4
,
Jon-Paul Maria
3
,
Patrick E Hopkins
6
Publication type: Journal Article
Publication date: 2020-09-01
scimago Q1
wos Q1
SJR: 2.972
CiteScore: 15.4
Impact factor: 9.3
ISSN: 13596454, 18732453
Metals and Alloys
Ceramics and Composites
Electronic, Optical and Magnetic Materials
Polymers and Plastics
Abstract
Due to their diverse bonding character and corresponding property repertoire, carbides are an important class of materials regularly used in modern technologies, including aerospace applications and extreme environments, catalysis, fuel cells, power electronics, and solar cells. The recent push for novel materials has increased interest in high entropy carbides (HECs) for such applications. The extreme level of tunability alone makes HECs a significant materials platform for a variety of fundamental studies and functional applications. We investigate the thermal conductivity of high entropy carbide thin films as carbon stoichiometry is varied. The thermal conductivity of the HEC decreases with an increase in carbon stoichiometry, while the respective phonon contribution scales with elastic modulus as the excess carbon content increases. Based on the carbon content, the HECs transition from an electrically conducting metal-like material with primarily metallic bonding to a primarily covalently-bonded crystal with thermal conductivities largely dominated by the phononic sub-system. When the carbon stoichiometry is increased above this critical transition threshold dictating bonding character, the electronic contribution to thermal conductivity is minimized, and a combination of changes in microstructure, defect concentration and secondary phase formation, and stiffness influence the phononic contribution to thermal conductivity. Our results demonstrate the ability to tune the thermal functionality of high entropy materials through stoichiometries that dictate the type of bonding environment.
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Rost C. M. et al. Electron and phonon thermal conductivity in high entropy carbides with variable carbon content // Acta Materialia. 2020. Vol. 196. pp. 231-239.
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Rost C. M., Borman T., HOSSAIN M. A., Lim M., Quiambao Tomko K. F., Tomko J., Brenner D. W., Maria J., Hopkins P. E. Electron and phonon thermal conductivity in high entropy carbides with variable carbon content // Acta Materialia. 2020. Vol. 196. pp. 231-239.
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TY - JOUR
DO - 10.1016/j.actamat.2020.06.005
UR - https://doi.org/10.1016/j.actamat.2020.06.005
TI - Electron and phonon thermal conductivity in high entropy carbides with variable carbon content
T2 - Acta Materialia
AU - Rost, Christina M.
AU - Borman, T
AU - HOSSAIN, Mohammad Ashraf
AU - Lim, Mina
AU - Quiambao Tomko, Kathleen F
AU - Tomko, John
AU - Brenner, Donald W.
AU - Maria, Jon-Paul
AU - Hopkins, Patrick E
PY - 2020
DA - 2020/09/01
PB - Elsevier
SP - 231-239
VL - 196
SN - 1359-6454
SN - 1873-2453
ER -
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@article{2020_Rost,
author = {Christina M. Rost and T Borman and Mohammad Ashraf HOSSAIN and Mina Lim and Kathleen F Quiambao Tomko and John Tomko and Donald W. Brenner and Jon-Paul Maria and Patrick E Hopkins},
title = {Electron and phonon thermal conductivity in high entropy carbides with variable carbon content},
journal = {Acta Materialia},
year = {2020},
volume = {196},
publisher = {Elsevier},
month = {sep},
url = {https://doi.org/10.1016/j.actamat.2020.06.005},
pages = {231--239},
doi = {10.1016/j.actamat.2020.06.005}
}