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首页> 外文期刊>Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology >First principles investigation of electronic structure change and energy transfer by redox in inverse spinel cathodes LiNiVO4 and LiCoVO4
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First principles investigation of electronic structure change and energy transfer by redox in inverse spinel cathodes LiNiVO4 and LiCoVO4

机译:反向尖晶石阴极LiNiVO4和LiCoVO4中电子结构变化和氧化还原能量转移的基本原理研究

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A first-principles investigation on changes of the crystal structure and electronic structure by lithium intercalation was performed for LiNiVO4 and LiCoVO4 with inverse spinel structures. The spin states were found to change from low spin states in the de-lithiated phases to high spin states in the lithiated phases, correlated with the decrease in the octahedral crystal field splitting caused by lithium intercalation. Atomic basin population analysis combined with differential charge density analysis showed that the charge transfer caused by lithium intercalation reduces both the transition metal ions and the oxygen ions, simultaneously weakening the covalent-bonding between them. To obtain a deeper insight into the energy transfer process, the lithiation process was analyzed by considering contributions from the electronic part and ionic part, defined as electron affinity and lithium ion affinity, which costs and releases energy in the lithiation process, respectively. The electron affinity of the host was found to be characteristic of the redox potential while the lithium ion affinity is almost the same for these two cathodes. The 3d electron configuration of the transition metal ions is the dominant factor determining the redox potential although the transition metal ions and the oxygen ions are both reduced. For the host material with d5, d6, and d7 configurations, our results reveal a A-shape for the electron affinity, with the maximum at the d6 configuration, and correspondingly a V-shape for the reduction potential, with the minimum at the d6 configuration.
机译:对具有反尖晶石结构的LiNiVO4和LiCoVO4进行了通过锂嵌入的晶体结构和电子结构变化的第一性原理研究。发现自旋态从去锂化相中的低自旋态改变为锂化相中的高自旋态,这与由锂嵌入引起的八面体晶体场分裂的减少有关。原子盆人口分析与微分电荷密度分析相结合,表明由锂嵌入引起的电荷转移同时减少了过渡金属离子和氧离子,同时削弱了它们之间的共价键。为了更深入地了解能量转移过程,通过考虑电子部分和离子部分(定义为电子亲和力和锂离子亲和力)的贡献来分析锂化过程,这分别在锂化过程中造成了成本并释放了能量。发现主体的电子亲和力是氧化还原电势的特征,而锂离子亲和力对于这两个阴极几乎相同。尽管过渡金属离子和氧离子均被还原,但过渡金属离子的3d电子构型是决定氧化还原电势的主要因素。对于具有d5,d6和d7构型的主体材料,我们的结果显示出电子亲和力的A形,在d6构形上最大,而还原电势的V形,在d6上最小。组态。

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