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An in-situ gas chromatography investigation into the suppression of oxygen gas evolution by coated amorphous cobalt-phosphate nanoparticles on oxide electrode

The real time detection of quantitative oxygen release from the cathode is performed by in-situ Gas Chromatography as a tool to not only determine the amount of oxygen release from a lithium-ion cell but also to address the safety concerns. This in-situ gas chromatography technique monitoring the ga...

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Autores principales: Gim, Jihyeon, Song, Jinju, Kim, Sungjin, Jo, Jeonggeun, Kim, Seokhun, Yoon, Jaegu, Kim, Donghan, Hong, Suk-Gi, Park, Jin-Hwan, Mathew, Vinod, Han, Junhee, Song, Sun-Ju, Kim, Jaekook
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4802213/
https://www.ncbi.nlm.nih.gov/pubmed/27001370
http://dx.doi.org/10.1038/srep23394
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author Gim, Jihyeon
Song, Jinju
Kim, Sungjin
Jo, Jeonggeun
Kim, Seokhun
Yoon, Jaegu
Kim, Donghan
Hong, Suk-Gi
Park, Jin-Hwan
Mathew, Vinod
Han, Junhee
Song, Sun-Ju
Kim, Jaekook
author_facet Gim, Jihyeon
Song, Jinju
Kim, Sungjin
Jo, Jeonggeun
Kim, Seokhun
Yoon, Jaegu
Kim, Donghan
Hong, Suk-Gi
Park, Jin-Hwan
Mathew, Vinod
Han, Junhee
Song, Sun-Ju
Kim, Jaekook
author_sort Gim, Jihyeon
collection PubMed
description The real time detection of quantitative oxygen release from the cathode is performed by in-situ Gas Chromatography as a tool to not only determine the amount of oxygen release from a lithium-ion cell but also to address the safety concerns. This in-situ gas chromatography technique monitoring the gas evolution during electrochemical reaction presents opportunities to clearly understand the effect of surface modification and predict on the cathode stability. The oxide cathode, 0.5Li(2)MnO(3)∙0.5LiNi(0.4)Co(0.2)Mn(0.4)O(2), surface modified by amorphous cobalt-phosphate nanoparticles (a-CoPO(4)) is prepared by a simple co-precipitation reaction followed by a mild heat treatment. The presence of a 40 nm thick a-CoPO(4) coating layer wrapping the oxide powders is confirmed by electron microscopy. The electrochemical measurements reveal that the a-CoPO(4) coated overlithiated layered oxide cathode shows better performances than the pristine counterpart. The enhanced performance of the surface modified oxide is attributed to the uniformly coated Co-P-O layer facilitating the suppression of O(2) evolution and offering potential lithium host sites. Further, the formation of a stable SEI layer protecting electrolyte decomposition also contributes to enhanced stabilities with lesser voltage decay. The in-situ gas chromatography technique to study electrode safety offers opportunities to investigate the safety issues of a variety of nanostructured electrodes.
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spelling pubmed-48022132016-03-23 An in-situ gas chromatography investigation into the suppression of oxygen gas evolution by coated amorphous cobalt-phosphate nanoparticles on oxide electrode Gim, Jihyeon Song, Jinju Kim, Sungjin Jo, Jeonggeun Kim, Seokhun Yoon, Jaegu Kim, Donghan Hong, Suk-Gi Park, Jin-Hwan Mathew, Vinod Han, Junhee Song, Sun-Ju Kim, Jaekook Sci Rep Article The real time detection of quantitative oxygen release from the cathode is performed by in-situ Gas Chromatography as a tool to not only determine the amount of oxygen release from a lithium-ion cell but also to address the safety concerns. This in-situ gas chromatography technique monitoring the gas evolution during electrochemical reaction presents opportunities to clearly understand the effect of surface modification and predict on the cathode stability. The oxide cathode, 0.5Li(2)MnO(3)∙0.5LiNi(0.4)Co(0.2)Mn(0.4)O(2), surface modified by amorphous cobalt-phosphate nanoparticles (a-CoPO(4)) is prepared by a simple co-precipitation reaction followed by a mild heat treatment. The presence of a 40 nm thick a-CoPO(4) coating layer wrapping the oxide powders is confirmed by electron microscopy. The electrochemical measurements reveal that the a-CoPO(4) coated overlithiated layered oxide cathode shows better performances than the pristine counterpart. The enhanced performance of the surface modified oxide is attributed to the uniformly coated Co-P-O layer facilitating the suppression of O(2) evolution and offering potential lithium host sites. Further, the formation of a stable SEI layer protecting electrolyte decomposition also contributes to enhanced stabilities with lesser voltage decay. The in-situ gas chromatography technique to study electrode safety offers opportunities to investigate the safety issues of a variety of nanostructured electrodes. Nature Publishing Group 2016-03-22 /pmc/articles/PMC4802213/ /pubmed/27001370 http://dx.doi.org/10.1038/srep23394 Text en Copyright © 2016, Macmillan Publishers Limited http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Gim, Jihyeon
Song, Jinju
Kim, Sungjin
Jo, Jeonggeun
Kim, Seokhun
Yoon, Jaegu
Kim, Donghan
Hong, Suk-Gi
Park, Jin-Hwan
Mathew, Vinod
Han, Junhee
Song, Sun-Ju
Kim, Jaekook
An in-situ gas chromatography investigation into the suppression of oxygen gas evolution by coated amorphous cobalt-phosphate nanoparticles on oxide electrode
title An in-situ gas chromatography investigation into the suppression of oxygen gas evolution by coated amorphous cobalt-phosphate nanoparticles on oxide electrode
title_full An in-situ gas chromatography investigation into the suppression of oxygen gas evolution by coated amorphous cobalt-phosphate nanoparticles on oxide electrode
title_fullStr An in-situ gas chromatography investigation into the suppression of oxygen gas evolution by coated amorphous cobalt-phosphate nanoparticles on oxide electrode
title_full_unstemmed An in-situ gas chromatography investigation into the suppression of oxygen gas evolution by coated amorphous cobalt-phosphate nanoparticles on oxide electrode
title_short An in-situ gas chromatography investigation into the suppression of oxygen gas evolution by coated amorphous cobalt-phosphate nanoparticles on oxide electrode
title_sort in-situ gas chromatography investigation into the suppression of oxygen gas evolution by coated amorphous cobalt-phosphate nanoparticles on oxide electrode
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4802213/
https://www.ncbi.nlm.nih.gov/pubmed/27001370
http://dx.doi.org/10.1038/srep23394
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