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Magnetism and ion diffusion in honeycomb layered oxide [Formula: see text]

In the quest for developing novel and efficient batteries, a great interest has been raised for sustainable K-based honeycomb layer oxide materials, both for their application in energy devices as well as for their fundamental material properties. A key issue in the realization of efficient batterie...

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Autores principales: Matsubara, Nami, Nocerino, Elisabetta, Forslund, Ola Kenji, Zubayer, Anton, Papadopoulos, Konstantinos, Andreica, Daniel, Sugiyama, Jun, Palm, Rasmus, Guguchia, Zurab, Cottrell, Stephen P., Kamiyama, Takashi, Saito, Takashi, Kalaboukhov, Alexei, Sassa, Yasmine, Masese, Titus, Månsson, Martin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7591923/
https://www.ncbi.nlm.nih.gov/pubmed/33110126
http://dx.doi.org/10.1038/s41598-020-75251-x
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author Matsubara, Nami
Nocerino, Elisabetta
Forslund, Ola Kenji
Zubayer, Anton
Papadopoulos, Konstantinos
Andreica, Daniel
Sugiyama, Jun
Palm, Rasmus
Guguchia, Zurab
Cottrell, Stephen P.
Kamiyama, Takashi
Saito, Takashi
Kalaboukhov, Alexei
Sassa, Yasmine
Masese, Titus
Månsson, Martin
author_facet Matsubara, Nami
Nocerino, Elisabetta
Forslund, Ola Kenji
Zubayer, Anton
Papadopoulos, Konstantinos
Andreica, Daniel
Sugiyama, Jun
Palm, Rasmus
Guguchia, Zurab
Cottrell, Stephen P.
Kamiyama, Takashi
Saito, Takashi
Kalaboukhov, Alexei
Sassa, Yasmine
Masese, Titus
Månsson, Martin
author_sort Matsubara, Nami
collection PubMed
description In the quest for developing novel and efficient batteries, a great interest has been raised for sustainable K-based honeycomb layer oxide materials, both for their application in energy devices as well as for their fundamental material properties. A key issue in the realization of efficient batteries based on such compounds, is to understand the K-ion diffusion mechanism. However, investigation of potassium-ion (K[Formula: see text] ) dynamics in materials using e.g. NMR and related techniques has so far been very challenging, due to its inherently weak nuclear magnetic moment, in contrast to other alkali ions such as lithium and sodium. Spin-polarised muons, having a high gyromagnetic ratio, make the muon spin rotation and relaxation ([Formula: see text] SR) technique ideal for probing ions dynamics in these types of energy materials. Here we present a study of the low-temperature magnetic properties as well as K[Formula: see text] dynamics in honeycomb layered oxide material [Formula: see text]  using mainly the [Formula: see text] SR technique. Our low-temperature [Formula: see text] SR results together with complementary magnetic susceptibility measurements find an antiferromagnetic transition at [Formula: see text]  K. Further [Formula: see text] SR studies performed at higher temperatures reveal that potassium ions (K[Formula: see text] ) become mobile above 200 K and the activation energy for the diffusion process is obtained as [Formula: see text]  meV. This is the first time that K[Formula: see text] dynamics in potassium-based battery materials has been measured using [Formula: see text] SR. Assisted by high-resolution neutron diffraction, the temperature dependence of the K-ion self diffusion constant is also extracted. Finally our results also reveal that K-ion diffusion occurs predominantly at the surface of the powder particles. This opens future possibilities for potentially improving ion diffusion as well as K-ion battery device performance using nano-structuring and surface coatings of the particles.
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spelling pubmed-75919232020-10-29 Magnetism and ion diffusion in honeycomb layered oxide [Formula: see text] Matsubara, Nami Nocerino, Elisabetta Forslund, Ola Kenji Zubayer, Anton Papadopoulos, Konstantinos Andreica, Daniel Sugiyama, Jun Palm, Rasmus Guguchia, Zurab Cottrell, Stephen P. Kamiyama, Takashi Saito, Takashi Kalaboukhov, Alexei Sassa, Yasmine Masese, Titus Månsson, Martin Sci Rep Article In the quest for developing novel and efficient batteries, a great interest has been raised for sustainable K-based honeycomb layer oxide materials, both for their application in energy devices as well as for their fundamental material properties. A key issue in the realization of efficient batteries based on such compounds, is to understand the K-ion diffusion mechanism. However, investigation of potassium-ion (K[Formula: see text] ) dynamics in materials using e.g. NMR and related techniques has so far been very challenging, due to its inherently weak nuclear magnetic moment, in contrast to other alkali ions such as lithium and sodium. Spin-polarised muons, having a high gyromagnetic ratio, make the muon spin rotation and relaxation ([Formula: see text] SR) technique ideal for probing ions dynamics in these types of energy materials. Here we present a study of the low-temperature magnetic properties as well as K[Formula: see text] dynamics in honeycomb layered oxide material [Formula: see text]  using mainly the [Formula: see text] SR technique. Our low-temperature [Formula: see text] SR results together with complementary magnetic susceptibility measurements find an antiferromagnetic transition at [Formula: see text]  K. Further [Formula: see text] SR studies performed at higher temperatures reveal that potassium ions (K[Formula: see text] ) become mobile above 200 K and the activation energy for the diffusion process is obtained as [Formula: see text]  meV. This is the first time that K[Formula: see text] dynamics in potassium-based battery materials has been measured using [Formula: see text] SR. Assisted by high-resolution neutron diffraction, the temperature dependence of the K-ion self diffusion constant is also extracted. Finally our results also reveal that K-ion diffusion occurs predominantly at the surface of the powder particles. This opens future possibilities for potentially improving ion diffusion as well as K-ion battery device performance using nano-structuring and surface coatings of the particles. Nature Publishing Group UK 2020-10-27 /pmc/articles/PMC7591923/ /pubmed/33110126 http://dx.doi.org/10.1038/s41598-020-75251-x Text en © The Author(s) 2020, corrected publication 2023 https://creativecommons.org/licenses/by/4.0/Open AccessThis article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Matsubara, Nami
Nocerino, Elisabetta
Forslund, Ola Kenji
Zubayer, Anton
Papadopoulos, Konstantinos
Andreica, Daniel
Sugiyama, Jun
Palm, Rasmus
Guguchia, Zurab
Cottrell, Stephen P.
Kamiyama, Takashi
Saito, Takashi
Kalaboukhov, Alexei
Sassa, Yasmine
Masese, Titus
Månsson, Martin
Magnetism and ion diffusion in honeycomb layered oxide [Formula: see text]
title Magnetism and ion diffusion in honeycomb layered oxide [Formula: see text]
title_full Magnetism and ion diffusion in honeycomb layered oxide [Formula: see text]
title_fullStr Magnetism and ion diffusion in honeycomb layered oxide [Formula: see text]
title_full_unstemmed Magnetism and ion diffusion in honeycomb layered oxide [Formula: see text]
title_short Magnetism and ion diffusion in honeycomb layered oxide [Formula: see text]
title_sort magnetism and ion diffusion in honeycomb layered oxide [formula: see text]
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7591923/
https://www.ncbi.nlm.nih.gov/pubmed/33110126
http://dx.doi.org/10.1038/s41598-020-75251-x
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