期刊文献+

掺杂Fe^(3+)对高电压正极材料LiNi_(0.5)Mn_(1.5)O_4结构和性能的影响 被引量:5

Effects of Fe^(3+) Doping on the Structure and Electrochemical Properties of High-voltage Cathode LiNi_(0.5)Mn_(1.5)O_4
在线阅读 下载PDF
导出
摘要 以Li2CO3、MnO2、NiO、FeC2O4·2H2O为原料,用高温固相法合成了尖晶石结构的LiNi0.5Mn1.5O4/LiNi0.5Mn1.45Fe0.05O4锂离子电池正极材料;并对合成的样品进行XRD、SEM及电化学性能测试。结果表明:引入Fe3+可以提高材料的结构稳定性,并且改善了材料的导电性,一定程度上减缓材料的容量衰减,LiNi0.5Mn1.45Fe0.05O4表现出较好的电化学性能,0.2C倍率下经20次充放电循环,未掺杂样品与掺杂样品的放电比容量分别为115.4mAh/g和120.1mAh/g,容量保持率由92.1%提高到96.5%。 Li-ion battery cathode materials LiNi0.5 Mn1 .5 O4/LiNi0.5 Mn1 .45 Fe0.05 O4 were synthesized by high temperature solid-phase method,while Li2 CO3 ,MnO2 ,NiO and FeC2 O4 ·2 H 2 O was used as raw materials.The syn-thesized samples were tested by XRD,SEM and electrochemical measurement.Results showed:LiNi0.5 Mn1 .45 Fe0.05 O4 exhibited better electrochemical performance.When Fe doping is applied on LiNi0.5 Mn1 .5 O4 ,not only was the stability of electrode structure improved,but also its electric conductivity and cycle performance were excellent.After 20 charge-discharge cycles(at 0.2C rates),the discharge capacity of LiNi0.5 Mn1 .5 O4 was 1 1 5.4 mAh/g,while the LiNi0.5-Mn1 .45 Fe0.05 O4 was 120.1 mAh/g,with a capacity retain ratio from 92.1% to 96.5%.
出处 《材料导报》 EI CAS CSCD 北大核心 2015年第12期15-18,共4页 Materials Reports
基金 珠海市战略性新兴产业重大项目 珠海市产学研合作专项(2011A05101003) 广东省科技厅计划项目(2009A060800011)
关键词 锂离子电池 高电压正极材料 固相法 FE 掺杂 电化学性能 lithium-ion battery high voltage cathode material solid-phase method Fe doping electrochemical properties
  • 相关文献

参考文献10

  • 1Tarascon J, Guyomard D. Li metal-free rechargeable batte- ries based on Lil+xMnzO4 cathodes (0~x~l) and carbon anodes [J]. J Electrochem SOc, 1991,138(10) : 2864.
  • 2Deng B, Nakamura H, Yoshio M. Comparison and im- provement of the high rate performance of different types of LiMnzO4 spinels [J]. J Power Sources, 2005 ,141(1) : l l6.
  • 3Santhanam R, Rambabu B. Research progress in high vol- tage spinel LiNi0.5 Mnl.5 O4 material [J]. J Power Sources, 2010,195(17) : 5442.
  • 4Kim J H, Myung S T, Yoon C, et al. Comparative study of LiNi0. s Mnl. s O4-~ and LiNi0. s Mnl. s 04 cathodes having two crystallographic structures: Fd3m and P4332 [J]. Chem Mater, 2004,16(5) : 906.
  • 5Arunkumar T, Manthiram A. Influence of chromium doping on the electrochemical performance of the 5V spinel cathode LiMn,. 5 Ni0. 5 O4 [J]. Electrocbim Acta, 2005,50(28) : 5568.
  • 6Konishi H, Suzuki K, Taminato S, et al. Effect of surface Li3PO4 coating on LiNi0. s Mnl.s 04 epitaxial thin film elec- trodes synthesized by pulsed laser deposition [J]. J Power Sources, 2014,269 .. 293.
  • 7Kiziltas-Yavuz N, Bhaskar A, Dixon D, et al. Improving the rate capability of high voltage lithium-ion battery ca- thode material LiNi0. 5 Mnl. 5 04 by ruthenium doping [J]. J Power Sources, 2014,267 : 533.
  • 8Li D, Ito A, Kobayakawa K, et al. Structural and electro- chemical characteristics of LiNio. 5-~ CO2~ Mnl. s x 04 prepared by spray drying process and post-annealing in 02 [J]. J Po- wer Sources, 2006,161 (2) : 1241.
  • 9Idemoto Y, Narai H, Koura N. Crystal structure and ca- thode performance dependence on oxygen content of LiMnl. 5- Ni0. 5 04 as a cathode material for secondary lithium batteries [J]. J Power Sources, 2003,119-121 : 125.
  • 10Liu G Q, Wen L, Wang X, et al. Effect of the impurity LixNil-xO on the electrochemical properties of 5 V cathode material LiNi0.s Mnl.5 04 [J]. J Alloys Compd, 2011, 509 (38):9377.

同被引文献182

引证文献5

二级引证文献7

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