材料科学
法拉第效率
阳极
化学工程
储能
钨
电化学
碳化钨
钠离子电池
碳纤维
动力学
吸附
导电体
热解炭
超级电容器
双金属片
离子
氧化物
炭黑
纳米技术
电化学动力学
涂层
类金刚石碳
复合材料
电极
热解
容量损失
非阻塞I/O
扩散阻挡层
作者
Wenjing Xu,Meng Wang,S L Zhang,Yue Tan,伍乐,Ce Zhou,Hui Bi,Fuqiang Huang
标识
DOI:10.1021/acsami.6c03546
摘要
Sodium–ion batteries (SIBs) are promising for large-scale energy storage due to their cost advantages and compatibility with existing lithium–ion battery manufacturing processes. Biomass-derived hard carbon (HC) is a commercially viable anode material but suffers from inherent drawbacks, including sluggish ion diffusion kinetics, low initial Coulombic efficiency (ICE), and poor low-temperature performance. Herein, tungsten carbide (WC)-doped bamboo-derived HC (HB–W) is fabricated via hydrothermal adsorption of phosphotungstic acid followed by high-temperature carbonization. In situ WC optimizes the electrode/electrolyte interface and induces local carbon lattice distortion to accelerate Na + diffusion, while constructing conductive networks and generating local electric fields for synergistic enhancement of ion transport kinetics and structural integrity. As a result, HB-W exhibits outstanding electrochemical performance: an ICE of 93.6%, a reversible capacity of 391.9 mAh g –1 at 60 mA g –1, 229.5 mAh g –1 at 15C, and 96.2% capacity retention after 1000 cycles at −20 °C/1C. This work provides a feasible strategy for boosting the comprehensive performance of biomass-derived HC, advancing its industrial application in high-rate and low-temperature SIBs.
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