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Local Structure in α-BIMEVOXes (ME = Ge, Sn)

[Image: see text] The BIMEVOXes are among the best oxide ion conductors at low and intermediate temperatures. Their high conductivity is associated with local defect structure. In this work, the local structures of two BIMEVOX compositions, Bi(2)V(0.9)Ge(0.1)O(5.45) and Bi(2)V(0.95)Sn(0.05)O(5.475),...

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Autores principales: Yue, Yajun, Dzięgielewska, Aleksandra, Zhang, Man, Hull, Stephen, Krok, Franciszek, Whiteley, Richard M., Toms, Harold, Malys, Marcin, Huang, Xuankai, Krynski, Marcin, Miao, Ping, Yan, Haixue, Abrahams, Isaac
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9835824/
https://www.ncbi.nlm.nih.gov/pubmed/36644215
http://dx.doi.org/10.1021/acs.chemmater.2c03001
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author Yue, Yajun
Dzięgielewska, Aleksandra
Zhang, Man
Hull, Stephen
Krok, Franciszek
Whiteley, Richard M.
Toms, Harold
Malys, Marcin
Huang, Xuankai
Krynski, Marcin
Miao, Ping
Yan, Haixue
Abrahams, Isaac
author_facet Yue, Yajun
Dzięgielewska, Aleksandra
Zhang, Man
Hull, Stephen
Krok, Franciszek
Whiteley, Richard M.
Toms, Harold
Malys, Marcin
Huang, Xuankai
Krynski, Marcin
Miao, Ping
Yan, Haixue
Abrahams, Isaac
author_sort Yue, Yajun
collection PubMed
description [Image: see text] The BIMEVOXes are among the best oxide ion conductors at low and intermediate temperatures. Their high conductivity is associated with local defect structure. In this work, the local structures of two BIMEVOX compositions, Bi(2)V(0.9)Ge(0.1)O(5.45) and Bi(2)V(0.95)Sn(0.05)O(5.475), are examined using total neutron and X-ray scattering methods, with both compositions exhibiting the ordered α-phase at 25 °C and the disordered γ-phase at 700 °C. While the diffraction data for the α-phase do not allow for the polar (C2) and nonpolar (C2/m) structures to be readily distinguished, measurements of dielectric permittivity suggest the α-phase is weakly ferroelectric in character, consistent with calculations of spontaneous polarization based on a combination of density functional calculations and machine learning methodology. Reverse Monte Carlo (RMC) analysis of total scattering data reveals Ge preferentially adopts tetrahedral geometry at both temperatures, while Sn is found to predominantly adopt octahedral coordination in the α-phase and tetrahedral coordination in the γ-phase. In all cases, V polyhedra are found to consist of tetrahedral, pentacoordinate, and octahedral geometries, as also predicted by the crystallographic analysis and confirmed by (51)V solid state NMR spectroscopy. Although similar long-range structures are observed at room temperature, the oxide ion vacancy distributions were found to be quite different between the two studied compositions, with a nonrandom deficiency in vacancy pairs in the second-nearest shell along the ⟨100⟩ tetragonal direction for BIGEVOX10, compared with a long-distance (>8.0 Å) ordering of equatorial vacancies for BISNVOX05. This is attributed to the differences in the preferred coordination geometries of the substituent cations in the two systems. Impedance spectroscopy measurements reveal both compositions show high conductivity in the order of 10(–1) S cm(–1) at 600 °C.
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spelling pubmed-98358242023-01-13 Local Structure in α-BIMEVOXes (ME = Ge, Sn) Yue, Yajun Dzięgielewska, Aleksandra Zhang, Man Hull, Stephen Krok, Franciszek Whiteley, Richard M. Toms, Harold Malys, Marcin Huang, Xuankai Krynski, Marcin Miao, Ping Yan, Haixue Abrahams, Isaac Chem Mater [Image: see text] The BIMEVOXes are among the best oxide ion conductors at low and intermediate temperatures. Their high conductivity is associated with local defect structure. In this work, the local structures of two BIMEVOX compositions, Bi(2)V(0.9)Ge(0.1)O(5.45) and Bi(2)V(0.95)Sn(0.05)O(5.475), are examined using total neutron and X-ray scattering methods, with both compositions exhibiting the ordered α-phase at 25 °C and the disordered γ-phase at 700 °C. While the diffraction data for the α-phase do not allow for the polar (C2) and nonpolar (C2/m) structures to be readily distinguished, measurements of dielectric permittivity suggest the α-phase is weakly ferroelectric in character, consistent with calculations of spontaneous polarization based on a combination of density functional calculations and machine learning methodology. Reverse Monte Carlo (RMC) analysis of total scattering data reveals Ge preferentially adopts tetrahedral geometry at both temperatures, while Sn is found to predominantly adopt octahedral coordination in the α-phase and tetrahedral coordination in the γ-phase. In all cases, V polyhedra are found to consist of tetrahedral, pentacoordinate, and octahedral geometries, as also predicted by the crystallographic analysis and confirmed by (51)V solid state NMR spectroscopy. Although similar long-range structures are observed at room temperature, the oxide ion vacancy distributions were found to be quite different between the two studied compositions, with a nonrandom deficiency in vacancy pairs in the second-nearest shell along the ⟨100⟩ tetragonal direction for BIGEVOX10, compared with a long-distance (>8.0 Å) ordering of equatorial vacancies for BISNVOX05. This is attributed to the differences in the preferred coordination geometries of the substituent cations in the two systems. Impedance spectroscopy measurements reveal both compositions show high conductivity in the order of 10(–1) S cm(–1) at 600 °C. American Chemical Society 2022-12-22 /pmc/articles/PMC9835824/ /pubmed/36644215 http://dx.doi.org/10.1021/acs.chemmater.2c03001 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 Yue, Yajun
Dzięgielewska, Aleksandra
Zhang, Man
Hull, Stephen
Krok, Franciszek
Whiteley, Richard M.
Toms, Harold
Malys, Marcin
Huang, Xuankai
Krynski, Marcin
Miao, Ping
Yan, Haixue
Abrahams, Isaac
Local Structure in α-BIMEVOXes (ME = Ge, Sn)
title Local Structure in α-BIMEVOXes (ME = Ge, Sn)
title_full Local Structure in α-BIMEVOXes (ME = Ge, Sn)
title_fullStr Local Structure in α-BIMEVOXes (ME = Ge, Sn)
title_full_unstemmed Local Structure in α-BIMEVOXes (ME = Ge, Sn)
title_short Local Structure in α-BIMEVOXes (ME = Ge, Sn)
title_sort local structure in α-bimevoxes (me = ge, sn)
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9835824/
https://www.ncbi.nlm.nih.gov/pubmed/36644215
http://dx.doi.org/10.1021/acs.chemmater.2c03001
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