High-capacity electrode materials for electrochemical energy storage: Role of nanoscale effects

被引:0
|
作者
JAGJIT NANDA
SURENDRA K MARTHA
RAMKI KALYANARAMAN
机构
[1] Oak Ridge National Laboratory,Materials Science & Technology Division
[2] Indian Institute of Technology Hyderabad,Department of Chemistry
[3] The University of Tennessee,Materials Science & Engineering Department
[4] University of Tennessee,Bredesen Center
[5] The University of Tennessee,Chemical and Biomolecular Engineering
来源
Pramana | 2015年 / 84卷
关键词
High capacity; cathode materials; Li-rich NMC; conversion cathodes; lithium-ion battery.; 82.47.Aa; 61.46.−w; 81.07.−b;
D O I
暂无
中图分类号
学科分类号
摘要
This review summarizes the current state-of-the art electrode materials used for high-capacity lithium-ion-based batteries and their significant role towards revolutionizing the electrochemical energy storage landscape in the area of consumer electronics, transportation and grid storage application. We discuss the role of nanoscale effects on the electrochemical performance of high-capacity battery electrode materials. Decrease in the particle size of the primary electrode materials from micron to nanometre size improves the ionic and electronic diffusion rates significantly. Nanometre-thick solid electrolyte (such as lithium phosphorous oxynitride) and oxides (such as Al2O3, ZnO, TiO2 etc.) material coatings also improve the interfacial stability and rate capability of a number of battery chemistries. We elucidate these effects in terms of different high-capacity battery chemistries based on intercalation and conversion mechanism.
引用
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页码:1073 / 1086
页数:13
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