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Roles of transition metals interchanging with lithium in electrode materials

机译:过渡金属与锂交换在电极材料中的作用

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Roles of antisite transition metals interchanging with Li atoms in electrode materials of Li transition-metal complex oxides were clarified using a newly developed direct labeling method, termed powder diffraction anomalous fine structure (P-DAFS) near the Ni K-edge. We site-selectively investigated the valence states and local structures of Ni in Li0.89Ni1.11O2, where Ni atoms occupy mainly the NiO2 host-layer sites and partially the interlayer Li sites in-between the host layers, during electrochemical Li insertion/extraction in a lithium-ion battery (LIB). The site-selective X-ray near edge structure evaluated via the P-DAFS method revealed that the interlayer Ni atoms exhibited much lower electrochemical activity as compared to those at the host-layer site. Furthermore, the present analyses of site-selective extended X-ray absorption fine structure performed using the P-DAFS method indicates local structural changes around the residual Ni atoms at the interlayer space during the initial charge; it tends to gather to form rock-salt NiO-like domains around the interlayer Ni. The presence of the NiO-like domains in the interlayer space locally diminishes the interlayer distance and would yield strain energy because of the lattice mismatch, which retards the subsequent Li insertion both thermodynamically and kinetically. Such restrictions on the Li insertion inevitably make the NiO-like domains electrochemically inactive, resulting in an appreciable irreversible capacity after the initial charge but an achievement of robust linkage of neighboring NiO2 layers that tend to be dissociated without the Li occupation. The P-DAFS characterization of antisite transition metals interchanging with Li atoms complements the understanding of the detailed charge-compensation and degradation mechanisms in the electrode materials.
机译:使用一种新开发的直接标记方法,即在镍K边缘附近的粉末衍射异常精细结构(P-DAFS),阐明了在锂过渡金属复合氧化物的电极材料中与锂原子交换的反位过渡金属的作用。我们在电化学Li的插入/提取过程中,选择性地研究了Li0.89Ni1.11O2中Ni的价态和局部结构,其中Ni原子主要占据了NiO2的主体层位,部分占据了主体层之间的层间Li位置。在锂离子电池(LIB)中。通过P-DAFS方法评估的位点选择性X射线近边缘结构显示,与在主体层位点相比,层间Ni原子的电化学活性低得多。此外,目前使用P-DAFS方法进行的定点扩展X射线吸收精细结构分析表明,在初始充电过程中,层间空间中残留Ni原子周围的局部结构变化;它倾向于聚集在中间层Ni周围形成岩盐状的NiO状畴。在层间空间中,类似NiO的畴的存在会局部减小层间距离,并且由于晶格失配而会产生应变能,这在热力学和动力学上都阻碍了随后的Li插入。这种对Li插入的限制不可避免地使NiO类结构域失去电化学活性,导致在初始充电后产生不可逆的显着容量,但实现了相邻的NiO2层的牢固连接,而这些连接往往会在没有Li占据的情况下解离。与Li原子交换的反位过渡金属的P-DAFS表征补充了对电极材料中详细的电荷补偿和降解机理的理解。

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