Effects of vanadium oxide coating on the performance of LiFePO4/C cathode for lithium-ion batteries

被引:0
作者
Yong Tao
Yanbing Cao
Guorong Hu
Pengwei Chen
Zhongdong Peng
Ke Du
Ming Jia
Yong Huang
Jin Xia
Luyu Li
Xiaoming Xie
机构
[1] Central South University,School of Metallurgy and Environment
[2] Amperex Technology Limited,undefined
来源
Journal of Solid State Electrochemistry | 2019年 / 23卷
关键词
Lithium-ion battery; LiFePO; cathode; Vanadium oxide ; Surface modification; Enhanced electrochemical performance;
D O I
暂无
中图分类号
学科分类号
摘要
LiFePO4 cathode material is considered as prospective materials for lithium-ion batteries and attracted great interest because of excellent cyclic performance and environmentally friendliness. However, LiFePO4 material suffers from inferior electronic and Li+ conductivity, which restricts its performance at high rate. Improving the interfacial stability and the interfacial charge transfer of the electrode is a necessary method to enhance the cycle and rate capability. Herein, vanadium oxide decoration on LiFePO4/C composites was obtained via a simple wet chemical method. The results show that a moderate amount of vanadium oxide hybrid stabilizes the structure of the matrix LiFePO4 material. Vanadium oxide and the residual carbon coating construct a mixed conductive network, which optimizes the interface structure and reaction dynamics of the electrode. In addition, the charge transfer resistance of the decorated hybrid is smaller and the Li+ diffusion ability is better than pristine LiFePO4/C material. Moreover, the electrochemical performance exhibits a promising high rate capability and perfect cycle ability, showing the discharge specific capacities of 157.2, 150.6, and 131.1 mAh g−1 at 0.1 C, 1 C, and 3 C respectively. Furthermore, the capacity retention reached 90.9% after the 1000th cycle at 3 C.
引用
收藏
页码:2243 / 2250
页数:7
相关论文
共 207 条
[1]  
Huang KP(2017)Magnetic impurity effects on self-discharge capacity, cycle performance, and rate capability of LiFePO J Solid State Electrochem 21 1767-1775
[2]  
Fey TK(2016)/C composites J Solid State Electrochem 20 379-387
[3]  
Lin YC(2001)Critical assessment of particle quality of commercial LiFePO Electrochem Solid-State Lett 4 A170-A172
[4]  
Wu PJ(1997) cathode material using coin cells—a causal table for lithium-ion battery performance J Electrochem Soc 144 1188-1194
[5]  
Chang JK(2011)Approaching theoretical capacity of LiFePO J Power Sources 196 2962-2970
[6]  
Kao HM(2002) at room temperature at high rates Nat Mater 1 123-128
[7]  
Cai G(2002)Phoshho-olivines as positive-electrode materials for rechargeable lithium batteries Solid State Ionics 148 45-51
[8]  
Fung KY(2011)Structure and performance of LiFePO Energy Environ Sci 4 269-284
[9]  
Ng KM(2014) cathode materials: a review J Solid State Electrochem 18 1557-1567
[10]  
Chu KL(2012)Electronically conductive phospho-olivines as lithium storage electrodes J Solid State Electrochem 16 767-773