Yuanyuan Zhang, Nurbiye Sawut, Jing Wang, Kean Chen, Yanxia Wang, Ping Liu, Yongjin Fang, Xinping Ai, Zhongxue Chen, Yuliang Cao
Hard carbon (HC) is widely investigated as an anode material for sodium-ion batteries (SIBs), but it suffers from poor rate capability, unsatisfactory cycling stability, and low initial Coulombic efficiency (ICE). Phosphorus doping can improve Na + storage by enlarging interlayer spacing and introducing active sites, but excessive doping usually generates abundant defects, aggravates side reactions, and hinders ion transport. Herein, we propose a synergistic strategy combining trace phosphorus (P) doping with defect repair to fabricate low-defect “vesicular” P-doped hard carbon (PHC). Controlled P incorporation expands the interlayer spacing, heals structural defects, and reinforces the carbon framework, enabling balanced electrochemical performance without compromising rate capability and cycle life. The optimized PHC-1.5% anode delivers a reversible capacity of 364.98 m Ah g –1, maintains 220 mAh g –1 at 2 A g –1, and retains 63.07% capacity after 5000 cycles. This work provides a simple and scalable route for defect-regulated hard carbon toward advanced SIB applications.