Direct Visualization of the Reversible O<sup>2-</sup> /O<sup>-</sup> Redox Process in Li-Rich Cathode Materials.

Li, Xiang; Qiao, Yu; Guo, Shaohua; Xu, Zhenming; Zhu, Hong; Zhang, Xiaoyu; Yuan, Yang; He, Ping et al. · Adv Mater · 2018

basic_science · Level V

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Abstract

Conventional cathodes of Li-ion batteries mainly operate through an insertion-extraction process involving transition metal redox. These cathodes will not be able to meet the increasing requirements until lithium-rich layered oxides emerge with beyond-capacity performance. Nevertheless, in-depth understanding of the evolution of crystal and excess capacity delivered by Li-rich layered oxides is insufficient. Herein, various in situ technologies such as X-ray diffraction and Raman spectroscopy are employed for a typical material Li<sub>1.2</sub> Ni<sub>0.2</sub> Mn<sub>0.6</sub> O<sub>2</sub> , directly visualizing O<sup>-</sup> O<sup>-</sup> (peroxo oxygen dimers) bonding mostly along the c-axis and demonstrating the reversible O<sup>2-</sup> /O<sup>-</sup> redox process. Additionally, the formation of the peroxo OO bond is calculated via density functional theory, and the corresponding OO bond length of ≈1.3 Å matches well with the in situ Raman results. These findings enrich the oxygen chemistry in layered oxides and open opportunities to design high-performance positive electrodes for lithium-ion batteries.