Wei Wenjie, Wang Fei, Yang Jianxiao, Zou Jialing, Li Jun, Shi Kui
Hunan Province Key Laboratory for Advanced Carbon Materials and Applied Technology, College of Materials Science and Engineering, Hunan University, Changsha, 410082, China.
School of Chemistry and Food Engineering, Changsha University of Science and Technology, Changsha, 410114, China.
ACS Appl Mater Interfaces. 2021 Feb 10;13(5):6557-6565. doi: 10.1021/acsami.0c22184. Epub 2021 Jan 27.
The pitch-based activated carbon fibers with nickel sulfide nanoparticles (ACF/NiS) were designed by in situ polymerization of ethylene tar with the addition of nickel nitrate followed by melt spinning, stabilization, carbonization, steam activation, and vulcanization processes. The ACF/NiS with hierarchical pore structure and abundant active sites was used as an anode material to improve Coulombic efficiency and increase capacity of potassium-ion batteries (PIBs). The results showed the obtained ACF/NiS with excellent specific surface area of 1552 m g and high mesopore volume contribution of 38%, which delivered a high initial Coulombic efficiency of 84.22%, a high capacity of 292.5 mAh g, and retained 95.7% capacity retention after 200 cycles at 0.5 A g current density. The NiS provided abundant active sites for the adsorption of potassium-ion, and the rich hierarchical structure shortened the electrolyte penetration path and expanded the storage space of potassium-ion, making it easier to store potassium-ion inside the ACF/NiS anode to obtain a better performance. This work presented one strategy for designing the hierarchical pore structure of pitch-based ACF to boost the capacity storage of PIBs and revealed that ACF-based carbon materials served as potential anodes for high-performance PIBs.
通过将乙烯焦油与硝酸镍原位聚合,随后经过熔融纺丝、稳定化、碳化、蒸汽活化和硫化过程,设计出了负载硫化镍纳米颗粒的沥青基活性炭纤维(ACF/NiS)。具有分级孔结构和丰富活性位点的ACF/NiS被用作阳极材料,以提高钾离子电池(PIB)的库仑效率并增加其容量。结果表明,所制备的ACF/NiS具有1552 m²/g的优异比表面积和38%的高介孔体积贡献,在0.5 A/g电流密度下,其初始库仑效率高达84.22%,容量为292.5 mAh/g,在200次循环后容量保持率为95.7%。硫化镍为钾离子的吸附提供了丰富的活性位点,丰富的分级结构缩短了电解质渗透路径,扩大了钾离子的储存空间,使得钾离子更容易存储在ACF/NiS阳极内部,从而获得更好的性能。这项工作提出了一种设计沥青基ACF分级孔结构以提高PIB容量存储的策略,并表明基于ACF的碳材料是高性能PIB的潜在阳极材料。