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Mechanical Stress Relief and Na+ Diffusion Enhancement via Bond Tuning and Vacancy Disorder in Low-Sodium O3 Cathodes
Xiaosha Wu1, Yiming Fan2, Xuan Lu1
1Integration of Energy Storage Technology, Engineering Research Center of Energy Storage Materials and Devices, Ministry of Education, Xi'an Key Laboratory of Sustainable Energy Materials Chemistry, Xi'an Jiaotong University, Xi'an, Shaanxi710049, People's Republic of China.
Abstract:
Layered transition-metal (TM) oxide cathodes have garnered considerable attention for their low cost and abundant sodium reservoir toward sodium-ion batteries (SIBs). However, their practical application is severely hindered by slow ion diffusion kinetics, as well as lattice stress accumulation and structural degradation induced by complex phase transitions. Herein, a low-sodium O3-type material, Na0.72Li0.1Mn0.35Cu0.08Ni0.25Fe0.1Ti0.12O2, is proposed through a lattice engineering strategy based on low-cation-potential high-entropy doping. The low Na content is inferred to introduce disordered vacancies, which help to improve the apparent Na+ diffusion kinetics. Meanwhile, theoretical calculations suggest that Ti incorporation can enhance Ti-O covalency, constructing a rigid lattice framework that helps to suppress interlayer sliding and mitigate lattice stress accumulation. The synergistic "bond-tuning" and "vacancy-disorder" effects mitigate the unfavorable O3-O'3 phase transition, with a lattice volume change of merely 1.68%, alleviating internal stress accumulation. This material demonstrates excellent energy density (427.36 Wh kg-1 based on the cathode), long-term cycling stability (80.40% capacity retention after 1000 cycles at 1 A g-1), with an average discharge voltage decay of only 0.0002 V per cycle, and broad temperature adaptability (-30 to 60 °C). This work provides valuable guidance for designing layered cathodes with long-cycle life and wide temperature adaptability at high rates.
