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Three-Dimensional Fe2O3 Nanocubes/Nitrogen-doped Graphene Aerogels: Nucleation Mechanism and Lithium Storage Properties

机译:三维Fe2O3纳米立方/氮掺杂石墨烯气凝胶:成核机理和储锂性能

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摘要

We developed a solvothermal-induced self-assembly approach to construct three dimensional (3D) macroscopic Fe2O3 nanocubesitrogen-doped graphene (Fe2O3-NC/GN) aerogel as anode materials for lithium-ion batteries (LIBs). The Fe2O3 nanocubes with length of ~50 nm are homogeneously anchored on 3D GN frameworks and as spacers to separate the neighboring GN sheets. Based on intensively investigations on the early stages of formation process, it is discovered that a non-classical nanoparticle-mediated crystallization process and a subsequent classical ion-mediated growth dominate the nanocube formation. This is totally different from the commonly recognized classical atom-mediated crystallization and ripening mechanism. Benefitting from the unique structures and characteristics, the optimized Fe2O3-NC/GN aerogel exhibits excellent rate capability, outstanding long-term cyclic stability at high current densities, which are outperforming most of Fe2O3/GS hybrid electrodes. These results suggest us to in-depth understand the detailed crystallization process, and rational design and precisely control the morphologies of nanocrystals on graphene for high performance energy applications.
机译:我们开发了一种溶剂热诱导的自组装方法来构建三维(3D)宏观Fe2O3纳米立方体/氮掺杂石墨烯(Fe2O3-NC / GN)气凝胶,作为锂离子电池(LIB)的阳极材料。长度约为50 nanonm的Fe2O3纳米立方体均匀地锚固在3D GN框架上,并作为分隔物分隔相邻的GN薄片。基于对形成过程早期阶段的深入研究,发现非经典纳米颗粒介导的结晶过程和随后的经典离子介导的生长主导了纳米立方体的形成。这与公认的经典原子介导的结晶和成熟机制完全不同。优化的Fe2O3-NC / GN气凝胶得益于其独特的结构和特性,在高电流密度下表现出优异的速率能力,出色的长期循环稳定性,其性能优于大多数Fe2O3 / GS混合电极。这些结果建议我们深入了解详细的结晶过程,合理设计并精确控制石墨烯上的纳米晶体的形貌,以用于高性能能源应用。

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