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Effect of nanosized Mg0.6Ni0.4O prepared by self-propagating high temperature synthesis on sulfur cathode performance in Li/S batteries

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dc.contributor.author Zhang, Yongguang
dc.contributor.author Bakenov, Zhumabay
dc.contributor.author Zhao, Yan
dc.contributor.author Konarov, Aishuak
dc.contributor.author Doan, The Nam Long
dc.contributor.author Sun, Kyung Eun Kate
dc.contributor.author Yermukhambetova, Assiya
dc.contributor.author Chen, P.
dc.creator Yongguang, Zhang
dc.date.accessioned 2017-12-15T05:02:14Z
dc.date.available 2017-12-15T05:02:14Z
dc.date.issued 2013-02-01
dc.identifier DOI:10.1016/j.powtec.2012.10.023
dc.identifier.citation Yongguang Zhang, Zhumabay Bakenov, Yan Zhao, Aishuak Konarov, The Nam Long Doan, Kyung Eun Kate Sun, Assiya Yermukhambetova, P. Chen, Effect of nanosized Mg0.6Ni0.4O prepared by self-propagating high temperature synthesis on sulfur cathode performance in Li/S batteries, In Powder Technology, Volume 235, 2013, Pages 248-255 en_US
dc.identifier.issn 00325910
dc.identifier.uri https://www.sciencedirect.com/science/article/pii/S0032591012007000
dc.identifier.uri http://nur.nu.edu.kz/handle/123456789/2930
dc.description.abstract Abstract Nanostructured magnesium nickel oxide Mg0.6Ni0.4O was successfully synthesized by self-propagating high temperature synthesis (SHS) followed by heat treatment. The effect of the precursor composition and calcination temperature on the Mg0.6Ni0.4O powder properties was investigated. These particles were used as an additive to prepare S/Mg0.6Ni0.4O composite via ball-milling with sulfur. The composite preparation conditions were optimized to achieve the higher specific surface area without compromising the sample crystallinity. The SEM observation revealed that the sulfur morphology was drastically changed by the Mg0.6Ni0.4O addition, from smooth to rough agglomerated particles. This change has enhanced the electrochemical performance of the composite cathode. Cyclic voltammetry and charge–discharge tests demonstrated enhanced reversibility and high sulfur utilization in a Li/S cell with S/Mg0.6Ni0.4O cathode, delivering about 850mAhg−1 of reversible capacity at the initial cycle. The effect of the Mg0.6Ni0.4O heat treatment temperature on the S/Mg0.6Ni0.4O cycling performance was also investigated. The cathode with Mg0.6Ni0.4O calcined at 700°C exhibited enhanced capacity retention which could be due to its high specific surface area and nanosized structure. en_US
dc.language.iso en en_US
dc.publisher Powder Technology en_US
dc.relation.ispartof Powder Technology
dc.subject Self-propagating high temperature synthesis en_US
dc.subject Mg0.6Ni0.4O en_US
dc.subject Sulfur cathode additive en_US
dc.subject Lithium–sulfur battery en_US
dc.title Effect of nanosized Mg0.6Ni0.4O prepared by self-propagating high temperature synthesis on sulfur cathode performance in Li/S batteries en_US
dc.type Article en_US
dc.rights.license Copyright © 2012 Elsevier B.V. All rights reserved.
elsevier.identifier.doi 10.1016/j.powtec.2012.10.023
elsevier.identifier.eid 1-s2.0-S0032591012007000
elsevier.identifier.pii S0032-5910(12)00700-0
elsevier.identifier.scopusid 84882612052
elsevier.volume 235
elsevier.coverdate 2013-02-01
elsevier.coverdisplaydate February 2013
elsevier.startingpage 248
elsevier.endingpage 255
elsevier.openaccess 0
elsevier.openaccessarticle false
elsevier.openarchivearticle false
elsevier.teaser Nanostructured magnesium nickel oxide Mg0.6Ni0.4O was successfully synthesized by self-propagating high temperature synthesis (SHS) followed by heat treatment. The effect of the precursor composition...
elsevier.aggregationtype Journal
workflow.import.source science


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