Wang Ziyang, Yao Meng, Luo Hang, Xu Changhaoyue, Tian Hao, Wang Qian, Wu Hao, Zhang Qianyu, Wu Yuping
Engineering Research Center of Alternative Energy Materials & Devices, Ministry of Education, College of Materials Science and Engineering, Sichuan University, Chengdu, 610064, P. R. China.
Key Laboratory of Energy Thermal Conversion and Control of Ministry of Education, School of Energy and Environment, South East University, Nanjing, 211189, P. R. China.
Small. 2024 Feb;20(5):e2306428. doi: 10.1002/smll.202306428. Epub 2023 Sep 27.
Silicon (Si) is considered a promising commercial material for the next-generation of high-energy density lithium-ion battery (LIB) due to its high theoretical capacity. However, the severe volume changes and the poor conductivity hinder the practical application of Si anode. Herein, a novel core-shell heterostructure, Si as the core and V O @C as the shell (Si@V O @C), is proposed by a facile solvothermal reaction. Theoretical simulations have shown that the in-situ-formed V O layer facilitates the rapid Li diffusion and lowers the energy barrier of Li transport from the carbon shell to the inner core. The 3D network structure constructed by amorphous carbon can effectively improve electronic conductivity and structural stability. Benefiting from the rationally designed structure, the optimized Si@V O @C electrode exhibits an excellent cycling stability of 1061.1 mAh g at 0.5 A g over 700 cycles (capacity retention of 70.0%) with an average Coulombic efficiency of 99.3%. In addition, the Si@V O @C||LiFePO full cell shows a superior capacity retention of 78.7% after 130 cycles at 0.5 C. This study opens a novel way for designing high-performance silicon anode for advanced LIBs.
由于硅(Si)具有高理论容量,它被认为是下一代高能量密度锂离子电池(LIB)的一种很有前景的商业材料。然而,严重的体积变化和较差的导电性阻碍了硅负极的实际应用。在此,通过一种简便的溶剂热反应,提出了一种新型的核壳异质结构,以硅为核,V O @C为壳(Si@V O @C)。理论模拟表明,原位形成的V O 层促进了锂的快速扩散,并降低了锂从碳壳传输到内核的能垒。由非晶碳构建的三维网络结构可以有效地提高电子导电性和结构稳定性。得益于合理设计的结构,优化后的Si@V O @C电极在0.5 A g下经过700次循环表现出优异的循环稳定性,容量为1061.1 mAh g(容量保持率为70.0%),平均库仑效率为99.3%。此外,Si@V O @C||LiFePO全电池在0.5 C下经过130次循环后显示出78.7%的优异容量保持率。这项研究为设计用于先进锂离子电池的高性能硅负极开辟了一条新途径。