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A morphology controllable synthesis of 3D graphene nanostructures and their energy storage applications

机译:3D石墨烯纳米结构的形态可控合成及其储能应用

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A template-assisted and morphology-controllable synthesis of 3D sulfonated graphene (SG) architectures was reported. The morphology can be controlled between a hollow nanobeads structure and macro-porous structure. The assembly mechanisms are investigated with respect to influencing factors including surface charge of the templating beads and pH value of the precursory solutions. The structures of these SG nanostructures are characterized by scanning electron microscopy (SEM) and transmission electron microscopy (TEM). In the application of the Li-ion battery, a maximum specific capacity of 865.5 mA h g ~(?1) for the macro-porous SG electrode is achieved at a current density of 100 mA g ~(?1) . Furthermore, even after 100 cycles, more than 99.0% of the specific capacity is still maintained. In the application of supercapacitors, a maximum specific capacity of 256.25 F g ~(?1) for the hollow nanobead SG cell is achieved at a current density of 0.5 A g ~(?1) and a satisfactory capacity retention is also obtained even after 1000 cycles.
机译:报道了3D磺化石墨烯(SG)架构的模板辅助和形态可控合成。可以在空心纳米钻孔结构和宏观多孔结构之间控制形态。关于影响因子的影响因素研究了组装机制,包括模板珠粒的表面电荷和前提溶液的pH值。这些SG纳米结构的结构的特征在于扫描电子显微镜(SEM)和透射电子显微镜(TEM)。在锂离子电池的应用中,宏观多孔SG电极的最大特定容量为865.5mA H G〜(α1),以100mA g〜(α1)的电流密度实现。此外,即使在100次循环之后,仍然保持超过99.0%的特定容量。在超级电容器的施加中,为中空纳米形状SG电池的最大比容量为256.25ff g〜(α1),其电流密度为0.5 a g〜(φ1),并且即使之后也获得了令人满意的容量保持率1000个循环。

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