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Enhancing lithium-rich manganese cathodes: Structural optimization and defect engineering via innovative thermal treatment for improved electrochemical durability and efficiency

Ceramics International, ISSN: 0272-8842, Vol: 50, Issue: 20, Page: 38792-38800
2024
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Data from Guizhou Normal University Advance Knowledge in Ceramics Research (Enhancing Lithium-rich Manganese Cathodes: Structural Optimization and Defect Engineering Via Innovative Thermal Treatment for Improved Electrochemical Durability and ...)

2024 OCT 23 (NewsRx) -- By a News Reporter-Staff News Editor at Engineering Daily News -- Fresh data on Technology - Ceramics Research are presented

Article Description

Lattice oxygen release, which results in progressive structural disintegration and inevitable capacity fading, poses a significant challenge to the commercialization of Li-rich Mn-based cathode materials. To mitigate voltage capacity degradation and offer a feasible manufacturing process for commercial-scale production, this study developed a cost-effective thermal processing method for a Li-rich Mn-based cathode material Li 1.2 Ni 0.13 Co 0.13 Mn 0.54 O 2 based on water-spray quenching. This method refines the physical phase structure, increases the specific capacity of the material, and creates a defect-tolerant dislocation substructure in the surface lattice. Furthermore, refining the nanoparticle size suppresses the occurrence of redox side reactions and mitigates electrolyte corrosion, resulting in a material with a specific capacity of 196.7 mAh g −1 after 200 cycles at a rate of 1C. This performance markedly exceeds that achieved with the untreated material, which exhibited a capacity of 104.2 mAh g −1 under the same conditions. In contrast to the conventional surface engineering and elemental modulation techniques, this study presents a practical solution for industrial applications, facilitating cost reductions and large-scale production.

Bibliographic Details

Huailei He; Xinyi Dai; Fuzhong Wu; Haijun Chen; Yi Mai; Jiexi Wang; Yunchao Liao; Dongdong Kong; Yuzhu Yuan; Yujie Yang; Youfeng Cao

Elsevier BV

Materials Science; Chemical Engineering

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