Highly reversible oxygen redox in layered compounds enabled by surface polyanions

层状化合物中高度可逆的氧氧化还原反应是由表面多阴离子介导的。

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Abstract

Oxygen-anion redox in lithium-rich layered oxides can boost the capacity of lithium-ion battery cathodes. However, the over-oxidation of oxygen at highly charged states aggravates irreversible structure changes and deteriorates cycle performance. Here, we investigate the mechanism of surface degradation caused by oxygen oxidation and the kinetics of surface reconstruction. Considering Li(2)MnO(3), we show through density functional theory calculations that a high energy orbital (lO(2p')) at under-coordinated surface oxygen prefers over-oxidation over bulk oxygen, and that surface oxygen release is then kinetically favored during charging. We use a simple strategy of turning under-coordinated surface oxygen into polyanionic (SO(4))(2-), and show that these groups stabilize the surface of Li(2)MnO(3) by depressing gas release and side reactions with the electrolyte. Experimental validation on Li(1.2)Ni(0.2)Mn(0.6)O(2) shows that sulfur deposition enhances stability of the cathode with 99.0% capacity remaining (194 mA h g(-1)) after 100 cycles at 1 C. Our work reveals a promising surface treatment to address the instability of highly charged layered cathode materials.

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