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A Rational Biphasic Tailoring Strategy Enabling High-Performance Layered Cathodes for Sodium-Ion Batteries.

Zhiwei ChengXin-Yu FanLianzheng YuWeibo HuaYu-Jie GuoYi-Hu FengFang-Di JiMengting LiuYa-Xia YinXiaogang HanYu-Guo GuoPeng-Fei Wang
Published in: Angewandte Chemie (International ed. in English) (2022)
Layered oxide cathodes usually exhibit high compositional diversity, thus providing controllable electrochemical performance for Na-ion batteries. These abundant components lead to complicated structural chemistry, closely affecting the stacking preference, phase transition and Na + kinetics. With this perspective, we explore the thermodynamically stable phase diagram of various P2/O3 composites based on a rational biphasic tailoring strategy. Then a specific P2/O3 composite is investigated and compared with its monophasic counterparts. A highly reversible structural evolution of P2/O3-P2/O3/P3-P2/P3-P2/Z/O3'-Z/O3' based on the Ni 2+ /Ni 3.5+ , Fe 3+ /Fe 4+ and Mn 3.8+ /Mn 4+ redox couples upon sequential Na extraction/insertion is revealed. The reduced structural strain at the phase boundary alleviates the phase transition and decreases the lattice mismatch during cycling, endowing the biphasic electrode a large reversible capacity of 144 mAh g -1 with the energy density approaching 514 Wh kg -1 .
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