Key Laboratory of Advanced Catalytic Materials and Technology, Advanced Catalysis and Green Manufacturing Collaborative Innovation Center, Changzhou University, Changzhou 213164, Jiangsu Province, China.
Langmuir. 2023 May 2;39(17):6029-6037. doi: 10.1021/acs.langmuir.3c00035. Epub 2023 Apr 18.
FeF has been extensively studied as an alternative positive material owing to its superior specific capacity and low cost, but the low conductivity, large volume variation, and slow kinetics seriously hinder its commercialization. Here, we propose the in situ growth of ultrafine FeF·0.33HO NPs on a three-dimensional reduced graphene oxide (3D RGO) aerogel with abundant pores by a facile freeze drying process followed by thermal annealing and fluorination. Within the FeF·0.33HO/RGO composites, the three-dimensional (3D) RGO aerogel and hierarchical porous structure ensure rapid diffusion of electrons/ions within the cathode, enabling good reversibility of FeF. Benefiting from these advantages, a superior cycle behavior of 232 mAh g under 0.1C over 100 cycles as well as outstanding rate performance is achieved. These results provide a promising approach for advanced cathode materials for Li-ion batteries.
六氟合铁(FeF)因其高比容量和低成本而被广泛研究作为替代正极材料,但导电性低、体积变化大以及动力学缓慢严重阻碍了其商业化。在这里,我们提出了一种简便的冷冻干燥工艺,随后通过热退火和氟化,在具有丰富孔的三维还原氧化石墨烯(3D RGO)气凝胶上原位生长超细 FeF·0.33HO NPs。在 FeF·0.33HO/RGO 复合材料中,三维(3D)RGO 气凝胶和分级多孔结构确保了阴极内电子/离子的快速扩散,使 FeF 具有良好的可逆性。得益于这些优势,在 0.1C 下循环 100 次后,232 mAh g 的卓越循环性能以及出色的倍率性能得以实现。这些结果为锂离子电池的先进阴极材料提供了一种很有前途的方法。