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Interlayer-Surface Synergistic Regulation in High-Entropy O3-Type Layered Oxides Toward Structurally Robust and
Zhenyu Cheng1,2, Huanyu Wang1,2, Lei Cao1,2
1Engineering Research Center of Frontier Technologies for Low-Carbon Steelmaking (Ministry of Education), Shenyang, China.
Abstract:
O3-type layered transition metal oxides offer high theoretical energy density and abundant Na+ storage sites for sodium-ion batteries but suffer from complex multistage phase transitions and poor air stability. Herein, a high-entropy layered cathode NaNi0.3Mn0.3Fe0.2Ti0.1Cu0.06Mg0.04O1.95F0.05, was designed via cation-anion co-doping and rational elemental tuning. The incorporation of Ti and Mg enhances lattice rigidity and alleviates local structural strain, while F effectively suppressing the Jahn-Teller distortion, thereby improving structural stability and mitigating multistage phase transitions through synergistic cation regulation. Furthermore, Mg/F regulation of the interlayer structure and surface chemistry induces moderate contraction of the Na interlayer spacing and a low-polarity surface, thereby enhancing air stability while maintaining fast Na+ transport kinetics. The cathode delivers a high reversible capacity of 130.8 mAh g-1 at 0.1 C, retains 85% capacity after 500 cycles at 2 C, and maintains 83 mAh g-1 at 10 C. Notably, after 30 days of air exposure, 88.6% of the initial capacity is preserved, and a full cell paired with a hard carbon anode achieves an energy density of 257.6 Wh kg-1 with excellent cycling stability. This work demonstrates an effective high-entropy design strategy for developing O3-type layered cathodes with improved structural stability and air stability.
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