阳极
电气化
储能
数码产品
材料科学
锂(药物)
纳米技术
极化(电化学)
金属锂
铅(地质)
能量密度
工程类
扩散
可扩展性
工艺工程
高能
电池(电)
作者
Haipeng Tang,Lijun Yue,Xiaowei Mu,Hui Xia,Haoshen Zhou
标识
DOI:10.20517/energymater.2025.109
摘要
The electrification of transportation and the proliferation of portable electronics demand high-performance lithium-ion batteries that deliver both high energy density and long cycle life under fast-charging conditions. However, commercial graphite anodes generally suffer from intrinsic limitations in rate capability due to their sluggish Li+ diffusion kinetics and low lithiation potential. The resulting anode polarization at high charging rates can lead to Li plating, causing performance degradation and inducing safety hazards. Over the past decade, phosphorus (P)-based anodes have emerged as promising alternatives owing to their high theoretical specific capacities, low Li+ diffusion energy barriers, moderate lithiation potentials that circumvent Li plating, and natural abundance. This review systematically discusses recent advances in the development of fast-charging P-based anodes. Fundamental insights into their structural characteristics, lithium storage behaviors, and reaction mechanisms are first presented. Key challenges are then summarized, followed by an in-depth analysis of major optimization strategies to overcome these limitations. Finally, future research directions are outlined to guide the rational design and scalable development of high-performance P-based anodes for next-generation fast-charging energy storage systems.
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