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无钴 3d 过渡金属氧化物插层电极 Li[Li0.2Ni0.2Mn0.6]O2 中的阴离子氧化还原化学。

Anion Redox Chemistry in the Cobalt Free 3d Transition Metal Oxide Intercalation Electrode Li[Li0.2Ni0.2Mn0.6]O2.

机构信息

Departments of Materials and Chemistry, University of Oxford , Parks Road, Oxford OX1 3PH, United Kingdom.

Department of Physics and Astronomy, Division of Molecular and Condensed Matter Physics, Uppsala University , Box 516, S-751 20 Uppsala, Sweden.

出版信息

J Am Chem Soc. 2016 Sep 7;138(35):11211-8. doi: 10.1021/jacs.6b05111. Epub 2016 Aug 24.

Abstract

Conventional intercalation cathodes for lithium batteries store charge in redox reactions associated with the transition metal cations, e.g., Mn(3+/4+) in LiMn2O4, and this limits the energy storage of Li-ion batteries. Compounds such as Li[Li0.2Ni0.2Mn0.6]O2 exhibit a capacity to store charge in excess of the transition metal redox reactions. The additional capacity occurs at and above 4.5 V versus Li(+)/Li. The capacity at 4.5 V is dominated by oxidation of the O(2-) anions accounting for ∼0.43 e(-)/formula unit, with an additional 0.06 e(-)/formula unit being associated with O loss from the lattice. In contrast, the capacity above 4.5 V is mainly O loss, ∼0.08 e(-)/formula. The O redox reaction involves the formation of localized hole states on O during charge, which are located on O coordinated by (Mn(4+)/Li(+)). The results have been obtained by combining operando electrochemical mass spec on (18)O labeled Li[Li0.2Ni0.2Mn0.6]O2 with XANES, soft X-ray spectroscopy, resonant inelastic X-ray spectroscopy, and Raman spectroscopy. Finally the general features of O redox are described with discussion about the role of comparatively ionic (less covalent) 3d metal-oxygen interaction on anion redox in lithium rich cathode materials.

摘要

用于锂电池的传统插层阴极通过与过渡金属阳离子(例如 LiMn2O4 中的 Mn(3+/4+))相关的氧化还原反应来存储电荷,这限制了锂离子电池的能量存储。例如 Li[Li0.2Ni0.2Mn0.6]O2 等化合物在超过过渡金属氧化还原反应的情况下表现出存储电荷的能力。超过 4.5 V 的附加容量发生在 4.5 V 以上。在 4.5 V 时的容量主要由 O(2-)阴离子的氧化主导,占约 0.43 e(-)/分子式单元,另外 0.06 e(-)/分子式单元与晶格中的 O 损失有关。相比之下,4.5 V 以上的容量主要是 O 的损失,约为 0.08 e(-)/分子式。O 氧化还原反应涉及在充电过程中在 O 上形成局部空穴态,这些空穴态位于由 (Mn(4+)/Li(+)) 配位的 O 上。这些结果是通过将(18)O 标记的 Li[Li0.2Ni0.2Mn0.6]O2 与 XANES、软 X 射线光谱学、共振非弹性 X 射线光谱学和拉曼光谱学相结合的操作电化学质量谱获得的。最后,描述了 O 氧化还原的一般特征,并讨论了相对离子(较少共价)3d 金属-氧相互作用对富锂阴极材料中阴离子氧化还原的作用。

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