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Combining Multiple-Element Doping of LiCoO2 and Bilayer Electrolytes for 4.6 V High-Voltage All-Solid-State Lithium
Guozhong Lu1, Jiaxing Lv1, Xiang Wu1
1Shanghai Key Laboratory of Magnetic Resonance, Institute of Magnetic Resonance and Molecular Imaging in Medicine, School of Physics and Electronic Science, East China Normal University, Shanghai 200062, P. R. China.
Abstract:
The halide electrolyte Li3InCl6 has been proposed to function as a barrier layer between LiCoO2 and solid electrolytes Li6PS5Cl, aimed at mitigating interfacial issues. Here we reveal that the employment of Li3InCl6 as a barrier layer is still ineffective for the LiCoO2 cathode due to the oxygen redox on the surface and the irreversible phase transition of LiCoO2 at a high voltage of 4.6 V. To suppress the irreversible phase transition and modulate the oxygen valence on the surface, we have introduced a Ti-Mg-Al doping strategy for LiCoO2. Remarkably, this doping suppresses the irreversible phase transition, stabilizes the structure of LiCoO2 under high voltage, and significantly reduces the formation of O (n < 2) on the LiCoO2 surface. This doping strategy together with a bilayer electrolyte design attains good electrochemical performance in 4.6 V LiCoO2 all-solid-state batteries, achieving a cycling life of 2200 cycles between 2.5 and 4.6 V with 80% capacity retention.
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