Journal of Power Sources, Vol.143, No.1-2, 212-218, 2005
Microstructure and electrochemical performance of LiNi(0.6)C(0.4-x)MnO(2)cathode materials
LiNi0.6Co0.4-xMnxO2 (0.15 <= x <= 0.25) cathode materials for lithium-ion batteries are synthesized by calcining a mixture of Ni0.6Co0.4-xMnx(OH)(2) and Li2CO3 at 890-950 degrees C for 15 h in a flowing oxygen atmosphere. The Ni0.6Co0.4-xMnx(OH)(2) recursor is obtained by a chemical co-precipitation method at pH= 11. Thermal analysis of the precursor for LiNi0.6Co0.4-xMnxO2 (0.15 <= x <= 0.25) shows that the weight loss is about 30% until the temperature reaches 750 degrees C. The X-ray diffraction patterns indicate the pure, layered, hexagonal structure of LiNi0.6Co0.4-xMnxO2. Scanning electron micrographs reveal that the morphology of the samples is characterized by larger agglomerates (5-15 mu m) of rather small layered particles (around 100 nm). The particle size tends to decrease with increasing Mn content. The electrochemical behaviour of LiNi0.6Co0.4-xMnxO2 powder is examined by using test cells cycled within the voltage range 3-4.3 V at the 0.1 C rate for the first cycle and then at the 0.2 C rate. LiNi0.6Co0.4-xMnxO2 (0.15 <= x <= 0.25) cathode materials exhibit good initial discharge capacity (165-180 mAh g(-1)) and a capacity retention of above 95% after 20 cycles. It is demonstrated that LiNixCoyMn1-x-yO2 electrodes are promising candidates for application as cathodes in lithium-ion batteries. (c) 2004 Elsevier B.V. All rights reserved.
Keywords:Li-ion battery;cathode material;co-precipitation method;cobalt doping;lithium nickel oxides;discharge capacity