Cycling Performance of LiNi1-y M yO2 (M=Ni, Ga, Al and/or Ti) Synthesized by Wet Milling and Solid-State Method
Cycling Performance of LiNi1-y M yO2 (M=Ni, Ga, Al and/or Ti) Synthesized by Wet Milling and Solid-State Method
송명엽(전북대학교); Daniel R. Mumm(University of California Irvine); Chan Kee Park(Chonbuk National University); 박혜령(전남대학교)
18권 3호, 465~472쪽
초록
The LiNi1-y MyO2 specimens with compositions of LiNiO2, LiNi0.975Ga0.025O2, LiNi0.975Al0.025O2, LiNi0.995Ti0.005O2, and LiNi0.990Al0.005Ti0.005O2 were synthesized by wet milling and a solid-state reaction method. Among all the specimens, LiNi0.990Al0.005Ti0.005O2 has the largest first discharge capacity of 196.3 mAh/g at a rate of 0.1 C. At n=50, LiNiO2 has the largest discharge capacity of 126.7 mAh/g. LiNiO2 has the best cycling performance, its degradation rate of discharge capacity being 0.73 mAh/g/cycle. LiNi0.975Al0.025O2shows the lowest decrease rate of the first discharge capacity with C rate. An equation describing the vari-ation of the discharge capacity with the number of charge-discharge cycles, n, is obtained. The William-son-Hall method is applied to calculate the crystallite size and the strain of the samples before and after charge-discharge cycling.
Abstract
The LiNi1-y MyO2 specimens with compositions of LiNiO2, LiNi0.975Ga0.025O2, LiNi0.975Al0.025O2, LiNi0.995Ti0.005O2, and LiNi0.990Al0.005Ti0.005O2 were synthesized by wet milling and a solid-state reaction method. Among all the specimens, LiNi0.990Al0.005Ti0.005O2 has the largest first discharge capacity of 196.3 mAh/g at a rate of 0.1 C. At n=50, LiNiO2 has the largest discharge capacity of 126.7 mAh/g. LiNiO2 has the best cycling performance, its degradation rate of discharge capacity being 0.73 mAh/g/cycle. LiNi0.975Al0.025O2shows the lowest decrease rate of the first discharge capacity with C rate. An equation describing the vari-ation of the discharge capacity with the number of charge-discharge cycles, n, is obtained. The William-son-Hall method is applied to calculate the crystallite size and the strain of the samples before and after charge-discharge cycling.
- 발행기관:
- 대한금속·재료학회
- DOI:
- http://dx.doi.org/
- 분류:
- 재료공학