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改进湿化学法制备锂离子正极材料 被引量:1

Novel wet chemical method for lithium-ion cathode materials
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摘要 采用一种新颖的湿化学制备方法合成磷酸铁锂正极材料,有效地控制磷酸铁锂的化学成分、相成分和粒径,提高其均匀性和导电性能,改善电化学性能。添加有机溶剂以改善(减小)团聚现象,同时降低了材料成本,简化了合成工艺,使之易于工业应用。通过XRD、SEM等测试表明,合成出的磷酸铁锂正极材料结晶完整、不含有杂相、颗粒细小、分布均匀,添加正丁醇可以显著地提高磷酸铁锂材料的比容量;添加聚乙二醇可以明显提高材料的抗衰减性能。 The novel method of wet-chemical synthesis of lithium iron phosphate cathode material,can effectively controled chemical composition,phase composition and particle size of product,and greatly enhanced its uniformity and conductive properties,also improvied its electrochemical performance.Adding organic solvents improved the agglomeration,meanwhile reducing material costs,and simplified the synthesis process,makde implementation in industry more easily.The samples were characterized by XRD,SEM and other tests,the results showed that the material crystallized well,with no impurity phase,small particles,uniform distribution.Adding n-butanol can significantly increased the lithium iron phosphate material's specific capacity,while PEG was important to improve the material's resistance to attenuation performance.
出处 《化工新型材料》 CAS CSCD 北大核心 2011年第5期32-34,69,共4页 New Chemical Materials
基金 国家科技支撑计划(2007BAQ01055) 国家自然科学基金(50574063)
关键词 湿化学法 团聚 正丁醇 聚乙二醇 wet-chemical synthesis agglomeration n-butanol polyethylene glycol
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  • 1Padhi A K, Nanjundaswamy K S, Goodenough J B. Phospho-olivines as positive-electrode materials for rechargeable lithium batterise [J]. d Eleetroehem Soe, 1997, 4(144): 1188-1194.
  • 2Bandhauer T M, Garimella S, Fuller T F. A critical review of thermal issues in lithium-ion batteries [J]. J Eleetroehem Soe, 2011, 158(3): R1-R25.
  • 3Minato Egashira, AkinoriKanetomo, Nobuko Yoshimoto, et al. Charge-discharge rate of spinel lithium manganese oxide and olivine lithium iron phosphate in ionic liquid-based electrolytes [J]. Journal of Power Source, 2011,196(15): 6419-6424.
  • 4CHEN Wei-min, HUANG Yun-hui, YUAN Li-xia. Self-assembly LiFePO4/polyaniline composite cathode materials with inorganic acid as dopants for lithium-ion batteries [J]. Journal of Eleetroanalytical Chemistry, 2011,660(1): 108-113.
  • 5YIN Xiong-ge, HUANG Ke-long, LIU Su-qin, et al. Preparation and characterization of Na-doped LiFePO4 composites as cathode materials for lithium-ion batteries [J]. Journal of Power Source, 2010, 195(13): 4308-4312.
  • 6Julien C M, Mauger A, Zaghib K. Surface effects on electrochemical properties of nano-sized LiFePO4 [J]. Journal of Materials Chemistry, 2011, 21(27): 9955-9968.
  • 7Wang Qiang, Zhang Wei-xin, Yang Ze-heng, et al. Solvothermal synthesis of hierarchical LiFeP04 microflowers as cathode materials for lithium ion batteries [J]. Journal of Power Source, 2011,196(23): 10176-10182.
  • 8Asep Bayu Dani Nandiyanto, Kikuo Okuyama. Progress in developing spray-drying methods for the production of controlled morphology particles: From the nanometer submicrometer size ranges [J]. Advanced Powder Technology, 2011, 22( 1): 1-19.
  • 9Li Jian-lin, Claus Daniel, David Wood. Materilas processing for lithium-ion batteries [J]. Journal of Power Source, 2011, 196(5): 2452-2460.
  • 10Miran Gaberseck, Robert Dominko, Janez Jamnik. Is small particle size more important than carbon coating? An example study on LiFePO4 cathodes [J]. Electrochemistry Communications, 2007, 9(12): 2778-2783.

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