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O3-Type Na 0.95 Ni 0.40 Fe 0.15 Mn 0.3 Ti 0.15 O 2 Cathode Materials with Enhanced Storage Stability for High-Energy Na-Ion Batteries.

Lianzheng YuYu-Xin ChangMengting LiuYi-Hu FengDuo SiXu ZhuXian-Zuo WangPeng-Fei WangSailong Xu
Published in: ACS applied materials & interfaces (2023)
O3-type layered oxides with high initial sodium content are promising cathode candidates for Na-ion batteries. However, affected by the undesired transition metal slab sliding and reaction with H 2 O/CO 2 , their further application is typically hindered by unsatisfactory cycling stability upon charging to high voltage and poor storage stability under humid air. Herein, we demonstrate a Fe/Ti cosubstitution strategy to simultaneously enhance the electrochemical performance and storage stability of pristine O3-NaNi 0.5 Mn 0.5 O 2 cathode material, via employing high redox potential and inactive stabilized dopants. The resultant Fe/Ti cosubstituted Na 0.95 Ni 0.40 Fe 0.15 Mn 0.3 Ti 0.15 O 2 undergoes highly reversible O3-P3-OP2 phase transitions with a small cell volume change of 2.8%, instead of complex O3-O'3-P3-P'3-P3'-O1 phase transitions in NaNi 0.5 Mn 0.5 O 2 . Consequently, the cathode displays a high specific capacity of 161.6 mAh g -1 with an average working voltage of 3.28 V and 81.8% capacity retention after 200 cycles at 5 C . Furthermore, the cathode material remains very stable after exposure to air for 7 days and even after soaking in water for 1 h, owing to the prohibition of sodium losing by elevating redox potential and contracting sodium layer spacing. This work proposes an effective method to enhance the electrochemical performance and storage stability of O3-type layered oxide cathodes and promises advancing Na-ion batteries toward large-scale industrialization.
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