Corrosion of aluminum electrodes in aqueous slurries for lithium-ion batteries

被引:0
作者
Benjamin C. Church
Daniel T. Kaminski
Junwei Jiang
机构
[1] University of Wisconsin-Milwaukee,
[2] Johnson Controls,undefined
[3] Inc.,undefined
来源
Journal of Materials Science | 2014年 / 49卷
关键词
LiFePO4; Aluminum Matrix; Intermetallic Particle; Aqueous Slurry; Current Collector Foil;
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中图分类号
学科分类号
摘要
Current manufacturing methods for lithium ion batteries use a non-aqueous solvent for producing slurries of cathode active materials and applying them to the aluminum current collectors. Transition to a water-based process may be desirable to reduce volatile organic compound emissions and costs, and increase processing efficiency. This transition may lead to additional complexities such as corrosion that could impact the performance of cells in service. The current work shows that the use of aqueous-based slurries for manufacturing lithium ion batteries can lead to general and pitting corrosion of the aluminum alloy foils used as current collectors with contact times as short as 100 s. Pitting corrosion initiates due to localized galvanic cells between cathodic intermetallic particles present in the aluminum alloy and the locally anodic aluminum matrix. The extent of pitting and amount of general corrosion product formed differs when using slurries of different active material compositions and increases with slurries of higher inherent pH. The presence of the intermetallic particles in the aluminum alloy is expected based on the chemical composition of the material. While elimination of the intermetallics from the aluminum is possible by increasing the purity of the material, it is unlikely that this mitigation strategy would be implemented due to economic considerations.
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页码:3234 / 3241
页数:7
相关论文
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  • [1] Whitehead AH(2005)Current collectors for positive electrodes of lithium-based batteries J Electrochem Soc 152 A2105-A2113
  • [2] Schreiber M(2010)Recent developments in cathode materials for lithium ion batteries J Power Sources 195 939-954
  • [3] Fergus JW(1999)Corrosion of lithium-ion battery current collectors J Electrochem Soc 146 448-456
  • [4] Braithwaite JW(2011)Electrochemical behavior and passivation of current collectors in lithium-ion batteries J Mater Chem 21 9891-9911
  • [5] Gonzales A(2005)Corrosion of aluminum current collectors in lithium-ion batteries with electrolytes containing LiPF6 J Electrochem Soc 152 B448-B454
  • [6] Nagasubramanian G(2002)Anodic behavior of aluminum in organic solutions with different electrolytic salts for lithium ion batteries Electrochim Acta 47 2787-2793
  • [7] Lucero SJ(2007)Corrosion of aluminum current collectors in high-power lithium-ion batteries for use in hybrid electric vehicles J Electrochem Soc 154 C390-C396
  • [8] Peebles DE(2010)Effect of consumption amount of lithium salt on the properties of LiFePO J Alloy Compd 496 376-379
  • [9] Ohlhausen JA(2013)/C cathode materials J Electrochem Soc 160 A3108-A3112
  • [10] Cieslak WR(2004)Synthesis of lithium and manganese-rich cathode materials via an oxalate co-precipitation method J Electrochem Soc 151 B465-B472