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◆ Materials Today Communications2025-12-08· Materials science

Stable P2/O3 biphasic layered oxide cathodes with enhanced cycling stability via Mg/Fe co-doping and high sodium content

Yaru Qin, Tingfei Yang, Na Chen, Anqi Li, Miao Yu, Jiale Li, Qipeng Zhang, Chenglong Shi, Jianmin Ma, Xue Qin

原始摘要(英文原文)· Original abstract
Traditional cathode materials for sodium-ion batteries, such as P2-Na 0.67 Ni 0.33 Mn 0.67 O 2 , operate at relatively high voltages but suffer structural degradation upon cycling, resulting in unstable electrochemical performance. Here, we report a newly designed layered oxide, Na 0.80 Ni 0.14 Mg 0.14 Mn 0.58 Fe 0.14 O 2 , synthesized through an economical co-doping strategy with Mg and Fe combined with high sodium content. This approach integrates the structural advantages of both P2- and O3-type frameworks. The increased sodium content promotes O3-phase formation and alleviates interlayer O-O repulsion, while Mg/Fe co-doping suppresses Jahn-Teller-active Mn 3 + and increases the Ni 3+ fraction, thereby facilitating Na + transport and enhancing structural stability. Electrochemical analyses (GITT and EIS) confirm accelerated Na + transport, and in-situ XRD reveals a highly reversible P2/O3 biphasic layered oxide with minimal lattice variation. The material delivers a reversible capacity of 125 mAh g⁻ 1 at 0.1 C and retains 88.5 % of its capacity after 100 cycles at 0.2 C. These results highlight that P2/O3-Na 0.80 Ni 0.14 Mg 0.14 Mn 0.58 Fe 0.14 O 2 combines excellent electrochemical performance with cost-effective metal doping, providing a promising strategy for the development of stable and economically viable sodium-ion battery cathodes.
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Stable P2/O3 biphasic layered oxide cathodes with enhanced cycling stability via Mg/Fe co-doping and high sodium content — 科研速览 Science Skim