Mansour A N, Croguennec L, Prado G, Delmas C
Naval Surface Warfare Center, Carderock Division, West Bethesda, MD 20817-5700, USA.
J Synchrotron Radiat. 2001 Mar 1;8(Pt 2):866-8. doi: 10.1107/s0909049501002096.
We have examined the oxidation states and local atomic structures of Ni, Fe, and Co in Li(x)Ni0.7Fe0.15Co0.15O2 as a function of Li content during the first charge in a Li/Li(x)Ni0.7Fe0.15Co0.15O2 nonaqueous cell. We show that the composition of the material in the pristine state is more accurately described by Li0.95Ni(II)0.09Ni(III)0.66Fe(III)0.15Co(III)0.25O2 Half of the Ni(II) resides in Li-vacant sites. Both Fe and Co substitute for Ni within the NiO2 slabs with no significant amounts of Fe or Co that can be attributed to Li-vacant sites. The local structure parameters are consistent with oxidation states observed on the basis of the XANES data. The Ni K-edge energy continuously shifts to a higher energy with decrease in Li content due to oxidation of Ni(II) to Ni(II) and Ni(III) to Ni(IV). After the complete oxidation of Ni(III) to Ni(IV), the Fe K-edge energy begins to increase with further decrease in Li content indicating the oxidation of Fe(III) to Fe(IV). The Co K-edge energy at half-height, on the other hand, is unchanged during the whole range of Li deintercalation indicating that no significant change in the oxidation state of Co occurs upon the complete removal of Li.
我们研究了在Li/Li(x)Ni0.7Fe0.15Co0.15O2非水电池首次充电过程中,Li(x)Ni0.7Fe0.15Co0.15O2中Ni、Fe和Co的氧化态及局部原子结构随Li含量的变化。我们表明,原始状态下材料的组成更准确地描述为Li0.95Ni(II)0.09Ni(III)0.66Fe(III)0.15Co(III)0.25O2。一半的Ni(II)位于锂空位处。Fe和Co在NiO2层板内替代Ni,没有大量的Fe或Co可归因于锂空位。局部结构参数与基于XANES数据观察到的氧化态一致。由于Ni(II)氧化为Ni(III)以及Ni(III)氧化为Ni(IV),随着Li含量的降低,Ni K边能量持续向更高能量移动。在Ni(III)完全氧化为Ni(IV)后,随着Li含量进一步降低,Fe K边能量开始增加,表明Fe(III)氧化为Fe(IV)。另一方面,在整个Li脱嵌范围内,Co K边半高能量不变,这表明在Li完全脱除后Co的氧化态没有显著变化。