期刊文献+

锂离子电池Li1.1Ni0.35Mn0.55O2正极材料的低温放电效率研究

Research on discharge efficiency of Li_(1.1)Ni_(0.35)Mn_(0.55)O_2 cathode material for Li-ion batteries at low-temperature performance
在线阅读 下载PDF
导出
摘要 通过共沉淀结合高温固相法合成Li1.1Ni0.35Mn0.55O2正极材料,在材料组分不变的情况下,通过改善合成条件,研究材料自身低温放电效率的变化,在此基础上,对其进行掺杂Co改性。采用X射线衍射光谱法(XRD)和扫描电子显微镜法(SEM)表征Li1.1Ni0.35Mn0.55O2正极材料的微观结构和颗粒形貌。通过电化学性能测试表征材料的低温放电效率。结果表明:在烧结温度900℃,保温时间12 h下的材料阳离子排列有序度最好,低温放电效率为52.67%;同时离子掺杂有利于低温性能的改善,掺杂少量Co有利于提高低温放电效率(64.56%)。 Li1.1Ni0.35Mn0.55O2 was prepared by co-precipitation and high temperature solid state method and optimized through Co doping modification. The discharge efficiency at low-temperature was discussed on the basis of the same component and different synthesis conditions. The micro structure and particle morphology of the materials were investigated by X-ray diffraction (XRD) and scanning electron microscopy (SEM). The discharge efficiencies at low-temperature were tested by electrochemical performance tests. The results show that Li1.1Ni0.35Mn0.55O2 material obtained at 900 ℃ for 12 h has the best cation ordering and exhibits the highest discharge efficiency at low-temperature, 52.67%. The material through Co doping modification shows the discharge efficiency at low-tem- perature is 64.56%, indicating the Co doping modification can improve the low-temperature performance.
出处 《电源技术》 CAS CSCD 北大核心 2015年第6期1171-1173,1197,共4页 Chinese Journal of Power Sources
基金 国家自然科学基金项目(50762004) 江西省教育厅项目(GJJ08269) 江西省青年科学基金(2010GQC0064)
关键词 锂离子电池 Li1.1Ni0.35Mn0.55O2 固相合成 低温性能 Li-ion batteries Li1.1Ni0.35Mn0.55O2 solid state synthesis low-temperature performance
  • 相关文献

参考文献10

二级参考文献72

  • 1左晓希,李伟善,刘建生,许梦清.砜类添加剂在锂离子电池电解液中的应用[J].电池工业,2006,11(2):97-99. 被引量:12
  • 2李义兵,陈白珍,胡拥军,李改变,陈亚,金基明.层状LiMnO_2的固相合成及电化学性能[J].无机化学学报,2006,22(6):983-987. 被引量:11
  • 3刘欣艳,赵煜娟,李燕,夏定国,储旺盛,李树军,吴自玉.Al、Co和Mn掺杂对LiNiO_2结构的影响[J].无机化学学报,2006,22(6):1007-1012. 被引量:8
  • 4许梦清,左晓希,周豪杰,李伟善,刘建生,袁中直.锂离子电池PC基电解液的电化学行为研究[J].电池工业,2006,11(3):185-189. 被引量:3
  • 5Ding M S,Xu K,Zhang S,et al.Liquid/Solid phase dia-grams of binary carbonates for Lithium batteries.Part Ⅱ[J].J Electrochem Sec,2001,148(4):A299-A304.
  • 6SmartMC,Ratnakumar B V,Whitcanack LD,et al.Ira proved low-temperature perfomnance of lithium-ion cells with quaternary carbonate-based electrolytes[J].J Power Sources,2003,119 -121(1):349 -358.
  • 7Plichta E J,Behl W K.A low-tempersture electrolyte for lithium and lithium-ion battery[J].J Power Sources,2000,88(2):192-196.
  • 8Xiao L F,Cao Y L,Ai X P,et al,Optimization of EC-besed multi-solvent electrolytes for low temperature applications of lithium-ion batteries[J].Electrechimica Acta,2004,49 (27):4857 -4863.
  • 9Naji A,Ghanbaja J,Willmann P,et al.New balogenated additives to propylene carbonate-based electrolytes for lithium-ion batteries[J].Electrochim Acta,2000,45 (12):1893-1899.
  • 10Wang C,Applebya A J,Frank E L.Irreveraible capacities of graphite anode for lithium-ion batteries[J].J Electrcanalytical Chem,2002,519(1 -2):9-17.

共引文献25

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部