Mild Preparation of Anode Materials for Lithim Ion Batteries: from Gas-Phase Oxidation to Salt-free Green Method

Natural graphite from cheap and abundant natural sources is an attractive anode material for lithium ion batteries. We report on modifications of such a common natural graphite, whose electrochemical performance is very poor, with solutions of (NH4)2S2O8, concentrated nitric acid, and green chemical...

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Main Authors: Holze, Rudolf, Wu, Yuping
Other Authors: TU Chemnitz, Fakultät für Naturwissenschaften
Format: Article
Language:English
Published: Universitätsbibliothek Chemnitz 2009
Subjects:
Online Access:http://nbn-resolving.de/urn:nbn:de:bsz:ch1-200901922
http://nbn-resolving.de/urn:nbn:de:bsz:ch1-200901922
http://www.qucosa.de/fileadmin/data/qucosa/documents/5913/data/wuho23f.pdf
http://www.qucosa.de/fileadmin/data/qucosa/documents/5913/20090192.txt
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spelling ndltd-DRESDEN-oai-qucosa.de-bsz-ch1-2009019222013-01-07T19:57:57Z Mild Preparation of Anode Materials for Lithim Ion Batteries: from Gas-Phase Oxidation to Salt-free Green Method Holze, Rudolf Wu, Yuping Anode material Lithium ion battery Mild oxidation Natural graphite ddc:540 Elektrochemie Graphit Lithium Natural graphite from cheap and abundant natural sources is an attractive anode material for lithium ion batteries. We report on modifications of such a common natural graphite, whose electrochemical performance is very poor, with solutions of (NH4)2S2O8, concentrated nitric acid, and green chemical solutions such of e.g. hydrogen peroxide and ceric sulfate. These treatments resulted in markedly im-proved electrochemical performance (reversible capacity, coulombic efficiency in the first cycle and cycling behavior). This is attributed to the effective removal of active defects, formation of a new dense surface film consisting of oxides, improvement of the graphite stability, and introduction of more nanochannels/micropores. These changes inhibit the decomposition of electrolyte solution, pre-vent the movement of graphene planes along a-axis direction, and provide more passage and storage sites for lithium. The methods are mild, and the uniformity of the product can be well controlled. Pilot experiments show promising results for their application in industry. Universitätsbibliothek Chemnitz TU Chemnitz, Fakultät für Naturwissenschaften 2009-11-27 doc-type:article application/pdf text/plain application/zip http://nbn-resolving.de/urn:nbn:de:bsz:ch1-200901922 urn:nbn:de:bsz:ch1-200901922 issn:0365-6470 issn:0080-5289 http://www.qucosa.de/fileadmin/data/qucosa/documents/5913/data/wuho23f.pdf http://www.qucosa.de/fileadmin/data/qucosa/documents/5913/20090192.txt Abhandlungen der Sächsischen Akademie der Wissenschaften zu Leipzig, Mathematisch-Naturwissenschaftliche Klasse. - 63. 2006, S. 96 eng
collection NDLTD
language English
format Article
sources NDLTD
topic Anode material
Lithium ion battery
Mild oxidation
Natural graphite
ddc:540
Elektrochemie
Graphit
Lithium
spellingShingle Anode material
Lithium ion battery
Mild oxidation
Natural graphite
ddc:540
Elektrochemie
Graphit
Lithium
Holze, Rudolf
Wu, Yuping
Mild Preparation of Anode Materials for Lithim Ion Batteries: from Gas-Phase Oxidation to Salt-free Green Method
description Natural graphite from cheap and abundant natural sources is an attractive anode material for lithium ion batteries. We report on modifications of such a common natural graphite, whose electrochemical performance is very poor, with solutions of (NH4)2S2O8, concentrated nitric acid, and green chemical solutions such of e.g. hydrogen peroxide and ceric sulfate. These treatments resulted in markedly im-proved electrochemical performance (reversible capacity, coulombic efficiency in the first cycle and cycling behavior). This is attributed to the effective removal of active defects, formation of a new dense surface film consisting of oxides, improvement of the graphite stability, and introduction of more nanochannels/micropores. These changes inhibit the decomposition of electrolyte solution, pre-vent the movement of graphene planes along a-axis direction, and provide more passage and storage sites for lithium. The methods are mild, and the uniformity of the product can be well controlled. Pilot experiments show promising results for their application in industry.
author2 TU Chemnitz, Fakultät für Naturwissenschaften
author_facet TU Chemnitz, Fakultät für Naturwissenschaften
Holze, Rudolf
Wu, Yuping
author Holze, Rudolf
Wu, Yuping
author_sort Holze, Rudolf
title Mild Preparation of Anode Materials for Lithim Ion Batteries: from Gas-Phase Oxidation to Salt-free Green Method
title_short Mild Preparation of Anode Materials for Lithim Ion Batteries: from Gas-Phase Oxidation to Salt-free Green Method
title_full Mild Preparation of Anode Materials for Lithim Ion Batteries: from Gas-Phase Oxidation to Salt-free Green Method
title_fullStr Mild Preparation of Anode Materials for Lithim Ion Batteries: from Gas-Phase Oxidation to Salt-free Green Method
title_full_unstemmed Mild Preparation of Anode Materials for Lithim Ion Batteries: from Gas-Phase Oxidation to Salt-free Green Method
title_sort mild preparation of anode materials for lithim ion batteries: from gas-phase oxidation to salt-free green method
publisher Universitätsbibliothek Chemnitz
publishDate 2009
url http://nbn-resolving.de/urn:nbn:de:bsz:ch1-200901922
http://nbn-resolving.de/urn:nbn:de:bsz:ch1-200901922
http://www.qucosa.de/fileadmin/data/qucosa/documents/5913/data/wuho23f.pdf
http://www.qucosa.de/fileadmin/data/qucosa/documents/5913/20090192.txt
work_keys_str_mv AT holzerudolf mildpreparationofanodematerialsforlithimionbatteriesfromgasphaseoxidationtosaltfreegreenmethod
AT wuyuping mildpreparationofanodematerialsforlithimionbatteriesfromgasphaseoxidationtosaltfreegreenmethod
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