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Versatility of MnO2 for lithium battery applications

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dc.contributor.author Thackeray, MM
dc.contributor.author Rossouw, MH
dc.contributor.author De Kock, A
dc.contributor.author De la Harpe, AP
dc.contributor.author Gummow, RJ
dc.contributor.author Pearce, K
dc.contributor.author Liles, DC
dc.date.accessioned 2007-06-12T07:41:27Z
dc.date.available 2007-06-12T07:41:27Z
dc.date.issued 1993-03-15
dc.identifier.citation Thackeray, MM, et al. 1993. Versatility of MnO2 for lithium battery applications. Journal of Power Sources, vol. 43, 3 January, pp 289-300 en
dc.identifier.issn 0378-7753
dc.identifier.uri http://hdl.handle.net/10204/563
dc.description Copyright: 1993 Elsevier Sequoia en
dc.description.abstract Manganese dioxide has for many years found widespread use as a cathode material in aqueous Leclanche, zinc chloride and alkaline cells and, more recently, in nonaqueous lithium cells. However, despite the large number of polymorphic structures that exist in the manganese dioxide family, the battery industry has used gamma-MnO2 exclusively as the positive electrode in these cells. With the advent of rechargeable lithium battery technology, research efforts have demonstrated that other MnO2 structures, when processed in the correct way, provide attractive electrochemical properties for lithium cells. In this paper, some recent advances that have been made in MnO2 materials technology are discussed, for example, in the development of alpha-MnO2, layered-MnO2, spinel-related Li2O.yMnO2 (y > = 2.5) and ramsdellite-MnO2 materials. An attempt has been made to clarify issues relating to the structural features of 'CDMO'-type materials that are prepared by the reaction of gamma-MnO2 with LiNO3 (or LiOH) at 300-400°C. Significant progress has been made in synthesising high-purity MnO2 materials and in understanding the structural features that account for their electrochemical properties in Li cells. Although more information about their long-term cycling performance is still required, it seems that alpha-MnO2, spinel-related Li2O .yMnO2 (y > = 2.5) and stabilised gamma-MnO2, (CDMO) electrodes offer particular promise for 3V rechargeable Li batteries. en
dc.language.iso en en
dc.publisher Elsevier Science SA en
dc.subject Manganese dioxide en
dc.subject Rechargeable lithium batteries en
dc.subject Manganese dioxide en
dc.title Versatility of MnO2 for lithium battery applications en
dc.type Article en
dc.identifier.apacitation Thackeray, M., Rossouw, M., De Kock, A., De la Harpe, A., Gummow, R., Pearce, K., & Liles, D. (1993). Versatility of MnO2 for lithium battery applications. http://hdl.handle.net/10204/563 en_ZA
dc.identifier.chicagocitation Thackeray, MM, MH Rossouw, A De Kock, AP De la Harpe, RJ Gummow, K Pearce, and DC Liles "Versatility of MnO2 for lithium battery applications." (1993) http://hdl.handle.net/10204/563 en_ZA
dc.identifier.vancouvercitation Thackeray M, Rossouw M, De Kock A, De la Harpe A, Gummow R, Pearce K, et al. Versatility of MnO2 for lithium battery applications. 1993; http://hdl.handle.net/10204/563. en_ZA
dc.identifier.ris TY - Article AU - Thackeray, MM AU - Rossouw, MH AU - De Kock, A AU - De la Harpe, AP AU - Gummow, RJ AU - Pearce, K AU - Liles, DC AB - Manganese dioxide has for many years found widespread use as a cathode material in aqueous Leclanche, zinc chloride and alkaline cells and, more recently, in nonaqueous lithium cells. However, despite the large number of polymorphic structures that exist in the manganese dioxide family, the battery industry has used gamma-MnO2 exclusively as the positive electrode in these cells. With the advent of rechargeable lithium battery technology, research efforts have demonstrated that other MnO2 structures, when processed in the correct way, provide attractive electrochemical properties for lithium cells. In this paper, some recent advances that have been made in MnO2 materials technology are discussed, for example, in the development of alpha-MnO2, layered-MnO2, spinel-related Li2O.yMnO2 (y > = 2.5) and ramsdellite-MnO2 materials. An attempt has been made to clarify issues relating to the structural features of 'CDMO'-type materials that are prepared by the reaction of gamma-MnO2 with LiNO3 (or LiOH) at 300-400°C. Significant progress has been made in synthesising high-purity MnO2 materials and in understanding the structural features that account for their electrochemical properties in Li cells. Although more information about their long-term cycling performance is still required, it seems that alpha-MnO2, spinel-related Li2O .yMnO2 (y > = 2.5) and stabilised gamma-MnO2, (CDMO) electrodes offer particular promise for 3V rechargeable Li batteries. DA - 1993-03-15 DB - ResearchSpace DP - CSIR KW - Manganese dioxide KW - Rechargeable lithium batteries KW - Manganese dioxide LK - https://researchspace.csir.co.za PY - 1993 SM - 0378-7753 T1 - Versatility of MnO2 for lithium battery applications TI - Versatility of MnO2 for lithium battery applications UR - http://hdl.handle.net/10204/563 ER - en_ZA


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