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Modelling amorphous materials via a joint solid-state NMR and X-ray absorption spectroscopy and DFT approach: application to alumina

Understanding a material's electronic structure is crucial to the development of many functional devices from semiconductors to solar cells and Li-ion batteries. A material's properties, including electronic structure, are dependent on the arrangement of its atoms. However, structure deter...

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Autores principales: Harper, Angela F., Emge, Steffen P., Magusin, Pieter C. M. M., Grey, Clare P., Morris, Andrew J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9891381/
https://www.ncbi.nlm.nih.gov/pubmed/36756318
http://dx.doi.org/10.1039/d2sc04035b
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author Harper, Angela F.
Emge, Steffen P.
Magusin, Pieter C. M. M.
Grey, Clare P.
Morris, Andrew J.
author_facet Harper, Angela F.
Emge, Steffen P.
Magusin, Pieter C. M. M.
Grey, Clare P.
Morris, Andrew J.
author_sort Harper, Angela F.
collection PubMed
description Understanding a material's electronic structure is crucial to the development of many functional devices from semiconductors to solar cells and Li-ion batteries. A material's properties, including electronic structure, are dependent on the arrangement of its atoms. However, structure determination (the process of uncovering the atomic arrangement), is impeded, both experimentally and computationally, by disorder. The lack of a verifiable atomic model presents a huge challenge when designing functional amorphous materials. Such materials may be characterised through their local atomic environments using, for example, solid-state NMR and XAS. By using these two spectroscopy methods to inform the sampling of configurations from ab initio molecular dynamics we devise and validate an amorphous model, choosing amorphous alumina to illustrate the approach due to its wide range of technological uses. Our model predicts two distinct geometric environments of AlO(5) coordination polyhedra and determines the origin of the pre-edge features in the Al K-edge XAS. From our model we construct an average electronic density of states for amorphous alumina, and identify localized states at the conduction band minimum (CBM). We show that the presence of a pre-edge peak in the XAS is a result of transitions from the Al 1s to Al 3s states at the CBM. Deconvoluting this XAS by coordination geometry reveals contributions from both AlO(4) and AlO(5) geometries at the CBM give rise to the pre-edge, which provides insight into the role of AlO(5) in the electronic structure of alumina. This work represents an important advance within the field of solid-state amorphous modelling, providing a method for developing amorphous models through the comparison of experimental and computationally derived spectra, which may then be used to determine the electronic structure of amorphous materials.
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spelling pubmed-98913812023-02-07 Modelling amorphous materials via a joint solid-state NMR and X-ray absorption spectroscopy and DFT approach: application to alumina Harper, Angela F. Emge, Steffen P. Magusin, Pieter C. M. M. Grey, Clare P. Morris, Andrew J. Chem Sci Chemistry Understanding a material's electronic structure is crucial to the development of many functional devices from semiconductors to solar cells and Li-ion batteries. A material's properties, including electronic structure, are dependent on the arrangement of its atoms. However, structure determination (the process of uncovering the atomic arrangement), is impeded, both experimentally and computationally, by disorder. The lack of a verifiable atomic model presents a huge challenge when designing functional amorphous materials. Such materials may be characterised through their local atomic environments using, for example, solid-state NMR and XAS. By using these two spectroscopy methods to inform the sampling of configurations from ab initio molecular dynamics we devise and validate an amorphous model, choosing amorphous alumina to illustrate the approach due to its wide range of technological uses. Our model predicts two distinct geometric environments of AlO(5) coordination polyhedra and determines the origin of the pre-edge features in the Al K-edge XAS. From our model we construct an average electronic density of states for amorphous alumina, and identify localized states at the conduction band minimum (CBM). We show that the presence of a pre-edge peak in the XAS is a result of transitions from the Al 1s to Al 3s states at the CBM. Deconvoluting this XAS by coordination geometry reveals contributions from both AlO(4) and AlO(5) geometries at the CBM give rise to the pre-edge, which provides insight into the role of AlO(5) in the electronic structure of alumina. This work represents an important advance within the field of solid-state amorphous modelling, providing a method for developing amorphous models through the comparison of experimental and computationally derived spectra, which may then be used to determine the electronic structure of amorphous materials. The Royal Society of Chemistry 2022-12-21 /pmc/articles/PMC9891381/ /pubmed/36756318 http://dx.doi.org/10.1039/d2sc04035b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Harper, Angela F.
Emge, Steffen P.
Magusin, Pieter C. M. M.
Grey, Clare P.
Morris, Andrew J.
Modelling amorphous materials via a joint solid-state NMR and X-ray absorption spectroscopy and DFT approach: application to alumina
title Modelling amorphous materials via a joint solid-state NMR and X-ray absorption spectroscopy and DFT approach: application to alumina
title_full Modelling amorphous materials via a joint solid-state NMR and X-ray absorption spectroscopy and DFT approach: application to alumina
title_fullStr Modelling amorphous materials via a joint solid-state NMR and X-ray absorption spectroscopy and DFT approach: application to alumina
title_full_unstemmed Modelling amorphous materials via a joint solid-state NMR and X-ray absorption spectroscopy and DFT approach: application to alumina
title_short Modelling amorphous materials via a joint solid-state NMR and X-ray absorption spectroscopy and DFT approach: application to alumina
title_sort modelling amorphous materials via a joint solid-state nmr and x-ray absorption spectroscopy and dft approach: application to alumina
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9891381/
https://www.ncbi.nlm.nih.gov/pubmed/36756318
http://dx.doi.org/10.1039/d2sc04035b
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