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Modifying Metastable Sr(1–x)BO(3−δ) (B = Nb, Ta, and Mo) Perovskites for Electrode Materials

[Image: see text] The presence of surface/deep defects in 4d- and 5d-perovskite oxide (ABO(3), B = Nb, Ta, Mo, etc.) nanoparticles (NPs), originating from multivalent B-site cations, contributes to suppressing their metallic properties. These defect states can be removed using a H(2)/Ar thermal trea...

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Autores principales: Ofoegbuna, Tochukwu, Peterson, Benjamin, da Silva Moura, Natalia, Nepal, Roshan, Kizilkaya, Orhan, Smith, Carsyn, Jin, Rongying, Plaisance, Craig, Flake, John C., Dorman, James A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8289236/
https://www.ncbi.nlm.nih.gov/pubmed/34133135
http://dx.doi.org/10.1021/acsami.1c05743
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author Ofoegbuna, Tochukwu
Peterson, Benjamin
da Silva Moura, Natalia
Nepal, Roshan
Kizilkaya, Orhan
Smith, Carsyn
Jin, Rongying
Plaisance, Craig
Flake, John C.
Dorman, James A.
author_facet Ofoegbuna, Tochukwu
Peterson, Benjamin
da Silva Moura, Natalia
Nepal, Roshan
Kizilkaya, Orhan
Smith, Carsyn
Jin, Rongying
Plaisance, Craig
Flake, John C.
Dorman, James A.
author_sort Ofoegbuna, Tochukwu
collection PubMed
description [Image: see text] The presence of surface/deep defects in 4d- and 5d-perovskite oxide (ABO(3), B = Nb, Ta, Mo, etc.) nanoparticles (NPs), originating from multivalent B-site cations, contributes to suppressing their metallic properties. These defect states can be removed using a H(2)/Ar thermal treatment, enabling the recovery of their electronic properties (i.e., low electrical resistivity, high carrier concentration, etc.) as expected from their electronic structure. Therefore, to engineer the electronic properties of these metastable perovskites, an oxygen-controlled crystallization approach coupled with a subsequent H(2)/Ar treatment was utilized. A comprehensive study of the effect of the post-treatment time on the electronic properties of these perovskite NPs was performed using a combination of scattering, spectroscopic, and computational techniques. These measurements revealed that a metallic-like state is stabilized in these oxygen-reduced NPs due to the suppression of deep rather than surface defects. Ultimately, this synthetic approach can be employed to synthesize ABO(3) perovskite NPs with tunable electronic properties for application into electrochemical devices.
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spelling pubmed-82892362021-07-20 Modifying Metastable Sr(1–x)BO(3−δ) (B = Nb, Ta, and Mo) Perovskites for Electrode Materials Ofoegbuna, Tochukwu Peterson, Benjamin da Silva Moura, Natalia Nepal, Roshan Kizilkaya, Orhan Smith, Carsyn Jin, Rongying Plaisance, Craig Flake, John C. Dorman, James A. ACS Appl Mater Interfaces [Image: see text] The presence of surface/deep defects in 4d- and 5d-perovskite oxide (ABO(3), B = Nb, Ta, Mo, etc.) nanoparticles (NPs), originating from multivalent B-site cations, contributes to suppressing their metallic properties. These defect states can be removed using a H(2)/Ar thermal treatment, enabling the recovery of their electronic properties (i.e., low electrical resistivity, high carrier concentration, etc.) as expected from their electronic structure. Therefore, to engineer the electronic properties of these metastable perovskites, an oxygen-controlled crystallization approach coupled with a subsequent H(2)/Ar treatment was utilized. A comprehensive study of the effect of the post-treatment time on the electronic properties of these perovskite NPs was performed using a combination of scattering, spectroscopic, and computational techniques. These measurements revealed that a metallic-like state is stabilized in these oxygen-reduced NPs due to the suppression of deep rather than surface defects. Ultimately, this synthetic approach can be employed to synthesize ABO(3) perovskite NPs with tunable electronic properties for application into electrochemical devices. American Chemical Society 2021-06-16 2021-06-30 /pmc/articles/PMC8289236/ /pubmed/34133135 http://dx.doi.org/10.1021/acsami.1c05743 Text en © 2021 The Authors. Published by American Chemical Society 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 Ofoegbuna, Tochukwu
Peterson, Benjamin
da Silva Moura, Natalia
Nepal, Roshan
Kizilkaya, Orhan
Smith, Carsyn
Jin, Rongying
Plaisance, Craig
Flake, John C.
Dorman, James A.
Modifying Metastable Sr(1–x)BO(3−δ) (B = Nb, Ta, and Mo) Perovskites for Electrode Materials
title Modifying Metastable Sr(1–x)BO(3−δ) (B = Nb, Ta, and Mo) Perovskites for Electrode Materials
title_full Modifying Metastable Sr(1–x)BO(3−δ) (B = Nb, Ta, and Mo) Perovskites for Electrode Materials
title_fullStr Modifying Metastable Sr(1–x)BO(3−δ) (B = Nb, Ta, and Mo) Perovskites for Electrode Materials
title_full_unstemmed Modifying Metastable Sr(1–x)BO(3−δ) (B = Nb, Ta, and Mo) Perovskites for Electrode Materials
title_short Modifying Metastable Sr(1–x)BO(3−δ) (B = Nb, Ta, and Mo) Perovskites for Electrode Materials
title_sort modifying metastable sr(1–x)bo(3−δ) (b = nb, ta, and mo) perovskites for electrode materials
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8289236/
https://www.ncbi.nlm.nih.gov/pubmed/34133135
http://dx.doi.org/10.1021/acsami.1c05743
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