Synergistically regulating the structural tolerance of Co-free Ni-rich cathode materials at high-rate through multi-heteroatoms substitution.

J Colloid Interface Sci

Engineering Research Center of the Ministry of Education for Advanced Battery Materials, School of Metallurgy and Environment, Central South University, Changsha 410083, PR China.

Published: November 2024

AI Article Synopsis

  • - Cobalt-free, nickel-rich layered oxides are promising for high-energy lithium-ion batteries but struggle with structural instability and poor reaction kinetics.
  • - A new doping method using higher oxidation state elements like Zr and Mo, along with magnesium, can enhance these materials' electrochemical properties and stability.
  • - The co-doping strategy improves capacity retention significantly (87.5% after 210 cycles), showcasing its importance for advancing sustainable and effective lithium-ion battery technology.

Article Abstract

Cobalt-free, nickel-rich layered oxides are attracting extensive interest as cathodes to construct high-energy and sustainable lithium-ion batteries, but the intrinsic structure instability and weakened reaction kinetics deteriorate their application. Nowadays, doping engineering, especially multielement doping, has become an effective modification method for obtaining high-performance Ni-rich materials. Herein, the designed doping strategy with high oxidation states element (Zr, Mo) substituting transition metal element and Mg replacing Li in LiNiMnO (NM-ZMM) has been designed to enhance its electrochemical properties. The introduced doping elements with high oxidation states can generate the strong metal-O bond, which contributes to suppress the structural collapse induced by internal stress, and then maintain unblock ion channels for NM-ZMM. Meanwhile, the presence of Mg can also be employed as the pillar ions to reinforce the structure stability, and occupy the Li-sites to inhibit lattice distortion during charging/discharging process. Thus, benefitting from the synergistic reinforcement of co-doping strategy, as-prepared NM-ZMM materials exhibit the prominent capacity retention (87.5 %, 210 cycles, 1C; 85.5 %, 2C, 150 cycles). Thereof, this creative strategy is crucial in strengthening the electrochemical performance of Ni-rich Co-free materials, which contributes to promote the development of high-performance and cost-effective Li-ion storage technology.

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Source
http://dx.doi.org/10.1016/j.jcis.2024.11.209DOI Listing

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