Stabilizing 4.6 V LiCoO via Er and Mg Trace Doping at Li-Site and Co-Site Respectively.

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Department of Chemistry and Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, Institute of New Energy, iChEM (Collaborative Innovation Center of Chemistry for Energy Materials) Fudan University, Shanghai, 200433, P. R. China.

Published: July 2024

Charging LiCoO to high voltages yields alluring specific capacities, yet the deleterious phase-transitions lead to significant capacity degradation. Herein, this study demonstrates a novel strategy to stabilize LiCoO at 4.6 V by doping with Er and Mg at the Li-site and Co-site, respectively, which is different from the traditional method of doping foreign elements solely at the Co-site. Theoretical calculations and experiments jointly reveal that the inclusion of Mg-dopants at the Co-site curbs the hexagonal-monoclinic phase transitions ≈4.2 V. However, this unintentionally compromises the stability of lattice oxygen in LiCoO, exacerbating the undesired phase transition (O3 to H1-3) above 4.45 V. Fascinatingly, the introduction of Er-dopants into Li-sites enhances the stability of lattice oxygen in LiCoO, effectively mitigating phase transitions above 4.45 V. Therefore, the Er, Mg co-doped LiCoO exhibits high stability over 500 cycles when tested in a half-cell with a cut-off voltage of 4.6 V. Furthermore, the Er, Mg-doped LiCoO//graphite pouch-type full cell demonstrates a high energy density of 310.8 Wh kg, preserving 91.3% of its energy over 100 cycles.

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http://dx.doi.org/10.1002/smll.202311578DOI Listing

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