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Synergistic Bulk-Surface Modulation Stabilizing LiCoO2 at 4.65 V via Zr-Pillaring and In Situ Lattice-Matching
Guanming Yang1, Jianhang Cui1, Bingwu Zhou1
1School of Chemistry and Chemical Engineering, Harbin Institute of Technology, Harbin, P. R. China.
Abstract:
Lithium cobalt oxide (LiCoO2, LCO) is a critical cathode material for high-energy-density lithium-ion batteries, yet its application above 4.55 V (vs. Li/Li+) is severely limited by structural degradation via the O3→H1-3 phase transition, lattice oxygen loss, and cobalt dissolution. Here, we report a synergistic bulk-surface modification strategy combining Zr-pillaring (LZCO) with in situ LiCoPO4 coating (LZCO@P) to stabilize LCO at 4.65 V. Zr-pillaring stabilizes the lattice and suppresses phase transition by expanding the O 2p-Co 3d band gap, as suggested by density functional theory (DFT), to mitigate oxygen redox activity. Lattice-matched interfacial engineering between LZCO and LiCoPO4 coating results from interfacial P-O tetrahedral formation, which enhances mechanical adhesion and reduces oxygen surface reactivity of LZCO. Consequently, LZCO@P achieves 80.8% capacity retention after 1000 cycles at 1 C (3.5-4.65 V) and 91.2% after 1000 cycles at 3 C (3.5-4.65 V). A practical Li||LZCO@P pouch cell retains 92.3% capacity after 160 cycles at 1 C (3.0-4.6 V). The synergistic bulk-surface modification strategy contributes through different mechanisms and comprehensively improves the cycling stability of LZCO@P at 4.65 V.

