Liang Bo, Yang Tingting, Yang Huiqian, Zhao Jinsheng, Dong Yunyun
School of Aviation and Transportation, Jiangsu College of Engineering and Technology Nantong 226000 China.
School of Automotive Engineering, Wuhan University of Technology Wuhan 430070 China.
RSC Adv. 2023 Aug 14;13(35):24191-24200. doi: 10.1039/d3ra01926h. eCollection 2023 Aug 11.
The conventional Li-ion battery composite electrode material composed of CuO and carbon nanotubes (CNTs) suffer from poor contact between CuO and CNTs. This results in high electrode resistance and poor electrochemical performance. To solve this problem, CuO@humic acid (HA) @CNT anode material with cross-linked network structure was generated by linking CuO and CNT with HA as a coupling agent. For comparison, CuO@HA or CuO@CNT were also prepared in the absence of CNT or HA, respectively. The results showed that CuO@HA@CNT had lower charge transfer resistance, higher conductivity, lithium-ion diffusion coefficient, specific capacity, and rate capability than CuO@HA and CuO@CNT. The specific capacity of the CuO@HA@CNT electrode was significantly better than that of the composite electrode materials of CuO and CNT, which have been prepared by scientists using various methods. Due to the introduction of HA, not only was the uniformly distributed flower-like CuO obtained, but also the specific capacity and rate capability of the electrode material were substantially improved. This study thus provides a good strategy to optimize the capability of transition metal oxide lithium-ion anode materials.
由氧化铜(CuO)和碳纳米管(CNTs)组成的传统锂离子电池复合电极材料存在CuO与CNTs之间接触不良的问题。这导致电极电阻高且电化学性能差。为了解决这个问题,通过以腐殖酸(HA)作为偶联剂连接CuO和CNT,制备了具有交联网络结构的CuO@腐殖酸(HA)@碳纳米管阳极材料。为作比较,还分别在不存在CNT或HA的情况下制备了CuO@HA或CuO@CNT。结果表明,与CuO@HA和CuO@CNT相比,CuO@HA@CNT具有更低的电荷转移电阻、更高的电导率、锂离子扩散系数、比容量和倍率性能。CuO@HA@CNT电极的比容量明显优于科学家们采用各种方法制备的CuO和CNT复合电极材料。由于HA的引入,不仅获得了均匀分布的花状CuO,而且电极材料的比容量和倍率性能也得到了大幅提高。因此,本研究为优化过渡金属氧化物锂离子负极材料的性能提供了一个良好的策略。