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Computational Prediction and Experimental Realization of Earth-Abundant Transparent Conducting Oxide Ga-Doped ZnSb(2)O(6)

[Image: see text] Transparent conducting oxides have become ubiquitous in modern optoelectronics. However, the number of oxides that are transparent to visible light and have the metallic-like conductivity necessary for applications is limited to a handful of systems that have been known for the pas...

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Autores principales: Jackson, Adam J., Parrett, Benjamin J., Willis, Joe, Ganose, Alex M., Leung, W. W. Winnie, Liu, Yuhan, Williamson, Benjamin A. D., Kim, Timur K., Hoesch, Moritz, Veiga, Larissa S. I., Kalra, Raman, Neu, Jens, Schmuttenmaer, Charles A., Lee, Tien-Lin, Regoutz, Anna, Lee, Tung-Chun, Veal, Tim D., Palgrave, Robert G., Perry, Robin, Scanlon, David O.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9664443/
https://www.ncbi.nlm.nih.gov/pubmed/36398093
http://dx.doi.org/10.1021/acsenergylett.2c01961
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author Jackson, Adam J.
Parrett, Benjamin J.
Willis, Joe
Ganose, Alex M.
Leung, W. W. Winnie
Liu, Yuhan
Williamson, Benjamin A. D.
Kim, Timur K.
Hoesch, Moritz
Veiga, Larissa S. I.
Kalra, Raman
Neu, Jens
Schmuttenmaer, Charles A.
Lee, Tien-Lin
Regoutz, Anna
Lee, Tung-Chun
Veal, Tim D.
Palgrave, Robert G.
Perry, Robin
Scanlon, David O.
author_facet Jackson, Adam J.
Parrett, Benjamin J.
Willis, Joe
Ganose, Alex M.
Leung, W. W. Winnie
Liu, Yuhan
Williamson, Benjamin A. D.
Kim, Timur K.
Hoesch, Moritz
Veiga, Larissa S. I.
Kalra, Raman
Neu, Jens
Schmuttenmaer, Charles A.
Lee, Tien-Lin
Regoutz, Anna
Lee, Tung-Chun
Veal, Tim D.
Palgrave, Robert G.
Perry, Robin
Scanlon, David O.
author_sort Jackson, Adam J.
collection PubMed
description [Image: see text] Transparent conducting oxides have become ubiquitous in modern optoelectronics. However, the number of oxides that are transparent to visible light and have the metallic-like conductivity necessary for applications is limited to a handful of systems that have been known for the past 40 years. In this work, we use hybrid density functional theory and defect chemistry analysis to demonstrate that tri-rutile zinc antimonate, ZnSb(2)O(6), is an ideal transparent conducting oxide and to identify gallium as the optimal dopant to yield high conductivity and transparency. To validate our computational predictions, we have synthesized both powder samples and single crystals of Ga-doped ZnSb(2)O(6) which conclusively show behavior consistent with a degenerate transparent conducting oxide. This study demonstrates the possibility of a family of Sb(V)-containing oxides for transparent conducting oxide and power electronics applications.
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spelling pubmed-96644432022-11-15 Computational Prediction and Experimental Realization of Earth-Abundant Transparent Conducting Oxide Ga-Doped ZnSb(2)O(6) Jackson, Adam J. Parrett, Benjamin J. Willis, Joe Ganose, Alex M. Leung, W. W. Winnie Liu, Yuhan Williamson, Benjamin A. D. Kim, Timur K. Hoesch, Moritz Veiga, Larissa S. I. Kalra, Raman Neu, Jens Schmuttenmaer, Charles A. Lee, Tien-Lin Regoutz, Anna Lee, Tung-Chun Veal, Tim D. Palgrave, Robert G. Perry, Robin Scanlon, David O. ACS Energy Lett [Image: see text] Transparent conducting oxides have become ubiquitous in modern optoelectronics. However, the number of oxides that are transparent to visible light and have the metallic-like conductivity necessary for applications is limited to a handful of systems that have been known for the past 40 years. In this work, we use hybrid density functional theory and defect chemistry analysis to demonstrate that tri-rutile zinc antimonate, ZnSb(2)O(6), is an ideal transparent conducting oxide and to identify gallium as the optimal dopant to yield high conductivity and transparency. To validate our computational predictions, we have synthesized both powder samples and single crystals of Ga-doped ZnSb(2)O(6) which conclusively show behavior consistent with a degenerate transparent conducting oxide. This study demonstrates the possibility of a family of Sb(V)-containing oxides for transparent conducting oxide and power electronics applications. American Chemical Society 2022-10-10 2022-11-11 /pmc/articles/PMC9664443/ /pubmed/36398093 http://dx.doi.org/10.1021/acsenergylett.2c01961 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Jackson, Adam J.
Parrett, Benjamin J.
Willis, Joe
Ganose, Alex M.
Leung, W. W. Winnie
Liu, Yuhan
Williamson, Benjamin A. D.
Kim, Timur K.
Hoesch, Moritz
Veiga, Larissa S. I.
Kalra, Raman
Neu, Jens
Schmuttenmaer, Charles A.
Lee, Tien-Lin
Regoutz, Anna
Lee, Tung-Chun
Veal, Tim D.
Palgrave, Robert G.
Perry, Robin
Scanlon, David O.
Computational Prediction and Experimental Realization of Earth-Abundant Transparent Conducting Oxide Ga-Doped ZnSb(2)O(6)
title Computational Prediction and Experimental Realization of Earth-Abundant Transparent Conducting Oxide Ga-Doped ZnSb(2)O(6)
title_full Computational Prediction and Experimental Realization of Earth-Abundant Transparent Conducting Oxide Ga-Doped ZnSb(2)O(6)
title_fullStr Computational Prediction and Experimental Realization of Earth-Abundant Transparent Conducting Oxide Ga-Doped ZnSb(2)O(6)
title_full_unstemmed Computational Prediction and Experimental Realization of Earth-Abundant Transparent Conducting Oxide Ga-Doped ZnSb(2)O(6)
title_short Computational Prediction and Experimental Realization of Earth-Abundant Transparent Conducting Oxide Ga-Doped ZnSb(2)O(6)
title_sort computational prediction and experimental realization of earth-abundant transparent conducting oxide ga-doped znsb(2)o(6)
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9664443/
https://www.ncbi.nlm.nih.gov/pubmed/36398093
http://dx.doi.org/10.1021/acsenergylett.2c01961
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