材料科学
阴极
表面改性
锂(药物)
扩散
化学工程
离子键合
纳米技术
阳极
瞬态(计算机编程)
航程(航空)
动力学
扩散阻挡层
表面扩散
纳米颗粒
离子电导率
容量损失
原子扩散
作者
Jianjun Zhao,Xiujie Ge,Anuj Kumar,Guangshi Tang,Yanzhi Sun,Mohd Ubaidullah,Junqing Pan
摘要
ABSTRACT LiFePO 4 has been widely adopted as a dominant cathode material for Li‐ion batteries; however, its unsatisfactory charge‐transport capability and sluggish ionic‐diffusion kinetics greatly hinder its power performance, especially in cold winter conditions. Herein, we propose a scalable super‐liquid‐film‐reactor (SLFR) with an interface‐coating combined strategy to achieve rapid large‐scale functionalization of the LiFePO 4 (M‐LFP@cP) cathode with greatly boosted ionic diffusion. The kilogram‐scale LiFePO 4 is transient nanostructured by the SLMR reactor in seconds, significantly shortening the Li + diffusion pathway and circumventing the crystal damage that occurs during conventional ball‐milling over hours. The new N─Fe bond anchored on the LiFePO 4 surface substantially reduces the Li + diffusion barrier and favors rapid Li + diffusion at the interface, thereby suppressing interfacial side reactions and active lithium loss during cycling. Furthermore, in situ experiments and DFT analyses systematically elucidate the structure‐activity relationship of rate‐dependent failure behavior and functionalization. The new M‐LFP@cP material exhibits nearly 100% theoretical reversible capacity (168.7 mAh g −1 at 0.1 C), ultrahigh rate capability (50 C), remarkable capacity retention of 83.0% after 1000 cycles at 5 C, and stable charge‐discharge capability over an ultra‐wide temperature range from −30 to 60°C, fully demonstrating the broad industrialization prospects of all‐weather LiFePO 4 power batteries.
科研通智能强力驱动
Strongly Powered by AbleSci AI