Zhirong Chen, Chen Cheng, Shuhao Dong, Yan Li, Qujia Xiang, Xuanrao Yu, Yuxuan Liu, Meini Guan, Yichi Zhang, Jiuqing Liu
Lithium cobalt oxide (LCO) cathode materials are widely used in 3C electronic products but suffer from rapid capacity fading at high voltages (>4.2 V). We propose a synergistic LiF/ZrO2 double-coating strategy to construct a flexible-rigid intimately intermingled nano-mosaic artificial interphase on Al-doped LiCoO2 (LCO-Al), significantly improving its cycling stability. Electrochemical tests show that the modified LCO-Al@LiF/ZrO2 has an initial discharge specific capacity of 205 mAh g-1 at 4.6 V and 0.5 C, much higher than 179 mAh g-1 of unmodified LCO (BLCO); after 100 cycles, its capacity retention reaches 81.9% (vs. 63.5% of BLCO). LCO-Al@LiF/ZrO2 also exhibits 97% capacity retention at 4.55 V. Mechanism analysis reveals that this strategy not only stabilizes the electrode-electrolyte interface and suppresses high-voltage phase transition but also enhances Li+ transport kinetics and reduces battery polarization, thus providing an effective approach for developing high-voltage LCO cathodes for high-energy-density lithium-ion batteries.