法拉第效率
材料科学
阴极
电导率
化学工程
复合数
碳纤维
无定形固体
兴奋剂
涂层
扩散
纳米技术
扩散阻挡层
无定形碳
图层(电子)
容量损失
电流密度
电阻率和电导率
离子电导率
三斜晶系
储能
磷酸铁锂
作者
Xudong Zhang,Zelong Chen,Zheyi Zou,Quan Pei,Jiafeng Zhai,Mei Yang,Yajuan Zhu,Jue Liu,Xuan Tang,Longlu Wang,Shuhong Xie,Jianyu Huang,Qingfeng Zhang
摘要
Phosphate salt Na2FeP2O7 has emerged as a potential candidate material for sodium-ion batteries due to its high stability in the triclinic structure and low cost. However, its practical implementation is hindered by intrinsic limitations such as poor electronic conductivity and sluggish Na+ diffusion kinetics. In this study, Ti-doped Na2FeP2O7 composite coated with an in situ formed amorphous carbon layer (0.1Ti-NFO@C) was synthesized via a sol-gel method followed by high-temperature calcination. The introduced Fe/Ti–O bonding network and carbon coating synergistically enhance the electronic conductivity and Na+ transport kinetics, which significantly improve the rate performance and specific capacity. The resulting 0.1Ti-NFO@C delivers a reversible capacity of 109.67 mAh g−1 at 0.2C, and retains a capacity of 77.90 mAh g−1 even at a high current density of 10C. Furthermore, when assembled into a full cell with hard carbon, it exhibits an initial discharge capacity of 110.04 mAh g−1 at 0.5C and retains a capacity of 54.88 mAh g−1 after 200 cycles at 2.0C, with a Coulombic efficiency exceeding 99%. These structural modifications significantly enhance the material's performance, providing valuable insights toward the practical implementation of polyanion cathodes.
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