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Direct Evidence on Effect of Oxygen Dissolution on Thermal and Electrical Conductivity of AlN Ceramics Using Al Solid-State NMR Analysis

Aluminum nitride, with its high thermal conductivity and insulating properties, is a promising candidate as a thermal dissipation material in optoelectronics and high-power logic devices. In this work, we have shown that the thermal conductivity and electrical resistivity of AlN ceramics are primari...

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Autores principales: Kim, Jaegyeom, Kim, Jong-Young, Ahn, Heewon, Jeong, Mu Hyeok, Lee, Eunsil, Cho, Keonhee, Lee, Sung-Min, Shim, Wooyoung, Pee, Jae-Hwan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9695506/
https://www.ncbi.nlm.nih.gov/pubmed/36431611
http://dx.doi.org/10.3390/ma15228125
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author Kim, Jaegyeom
Kim, Jong-Young
Ahn, Heewon
Jeong, Mu Hyeok
Lee, Eunsil
Cho, Keonhee
Lee, Sung-Min
Shim, Wooyoung
Pee, Jae-Hwan
author_facet Kim, Jaegyeom
Kim, Jong-Young
Ahn, Heewon
Jeong, Mu Hyeok
Lee, Eunsil
Cho, Keonhee
Lee, Sung-Min
Shim, Wooyoung
Pee, Jae-Hwan
author_sort Kim, Jaegyeom
collection PubMed
description Aluminum nitride, with its high thermal conductivity and insulating properties, is a promising candidate as a thermal dissipation material in optoelectronics and high-power logic devices. In this work, we have shown that the thermal conductivity and electrical resistivity of AlN ceramics are primarily governed by ionic defects created by oxygen dissolved in AlN grains, which are directly probed using (27)Al NMR spectroscopy. We find that a 4-coordinated AlN(3)O defect (O(N)) in the AlN lattice is changed to intermediate AlNO(3), and further to 6-coordinated AlO(6) with decreasing oxygen concentration. As the aluminum vacancy (V(Al)) defect, which is detrimental to thermal conductivity, is removed, the overall thermal conductivity is improved from 120 to 160 W/mK because of the relatively minor effect of the AlO(6) defect on thermal conductivity. With the same total oxygen content, as the AlN(3)O defect concentration decreases, thermal conductivity increases. The electrical resistivity of our AlN ceramics also increases with the removal of oxygen because the major ionic carrier is V(Al). Our results show that to enhance the thermal conductivity and electrical resistivity of AlN ceramics, the dissolved oxygen in AlN grains should be removed first. This understanding of the local structure of Al-related defects enables us to design new thermal dissipation materials.
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spelling pubmed-96955062022-11-26 Direct Evidence on Effect of Oxygen Dissolution on Thermal and Electrical Conductivity of AlN Ceramics Using Al Solid-State NMR Analysis Kim, Jaegyeom Kim, Jong-Young Ahn, Heewon Jeong, Mu Hyeok Lee, Eunsil Cho, Keonhee Lee, Sung-Min Shim, Wooyoung Pee, Jae-Hwan Materials (Basel) Article Aluminum nitride, with its high thermal conductivity and insulating properties, is a promising candidate as a thermal dissipation material in optoelectronics and high-power logic devices. In this work, we have shown that the thermal conductivity and electrical resistivity of AlN ceramics are primarily governed by ionic defects created by oxygen dissolved in AlN grains, which are directly probed using (27)Al NMR spectroscopy. We find that a 4-coordinated AlN(3)O defect (O(N)) in the AlN lattice is changed to intermediate AlNO(3), and further to 6-coordinated AlO(6) with decreasing oxygen concentration. As the aluminum vacancy (V(Al)) defect, which is detrimental to thermal conductivity, is removed, the overall thermal conductivity is improved from 120 to 160 W/mK because of the relatively minor effect of the AlO(6) defect on thermal conductivity. With the same total oxygen content, as the AlN(3)O defect concentration decreases, thermal conductivity increases. The electrical resistivity of our AlN ceramics also increases with the removal of oxygen because the major ionic carrier is V(Al). Our results show that to enhance the thermal conductivity and electrical resistivity of AlN ceramics, the dissolved oxygen in AlN grains should be removed first. This understanding of the local structure of Al-related defects enables us to design new thermal dissipation materials. MDPI 2022-11-16 /pmc/articles/PMC9695506/ /pubmed/36431611 http://dx.doi.org/10.3390/ma15228125 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kim, Jaegyeom
Kim, Jong-Young
Ahn, Heewon
Jeong, Mu Hyeok
Lee, Eunsil
Cho, Keonhee
Lee, Sung-Min
Shim, Wooyoung
Pee, Jae-Hwan
Direct Evidence on Effect of Oxygen Dissolution on Thermal and Electrical Conductivity of AlN Ceramics Using Al Solid-State NMR Analysis
title Direct Evidence on Effect of Oxygen Dissolution on Thermal and Electrical Conductivity of AlN Ceramics Using Al Solid-State NMR Analysis
title_full Direct Evidence on Effect of Oxygen Dissolution on Thermal and Electrical Conductivity of AlN Ceramics Using Al Solid-State NMR Analysis
title_fullStr Direct Evidence on Effect of Oxygen Dissolution on Thermal and Electrical Conductivity of AlN Ceramics Using Al Solid-State NMR Analysis
title_full_unstemmed Direct Evidence on Effect of Oxygen Dissolution on Thermal and Electrical Conductivity of AlN Ceramics Using Al Solid-State NMR Analysis
title_short Direct Evidence on Effect of Oxygen Dissolution on Thermal and Electrical Conductivity of AlN Ceramics Using Al Solid-State NMR Analysis
title_sort direct evidence on effect of oxygen dissolution on thermal and electrical conductivity of aln ceramics using al solid-state nmr analysis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9695506/
https://www.ncbi.nlm.nih.gov/pubmed/36431611
http://dx.doi.org/10.3390/ma15228125
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