Institute for Advanced Interdisciplinary Research, Shandong Provincial Key Laboratory of Fluorine Chemistry and Chemical Materials, University of Jinan, Jinan 250022, China.
Institute for Advanced Interdisciplinary Research, Shandong Provincial Key Laboratory of Fluorine Chemistry and Chemical Materials, University of Jinan, Jinan 250022, China.
J Colloid Interface Sci. 2018 Apr 15;516:1-8. doi: 10.1016/j.jcis.2018.01.045. Epub 2018 Jan 16.
The SnS nanoflowers anchored on three dimensional porous graphene were easily constructed with nickel foam (NF) as supported backbone through the dip-coating method followed by one-step controllable hydrothermal growth and mild reduction. The interconnected SnS nanoflowers with cross-linking nanosheets and rich pores assembled to form one layer of continuous network structure, which tightly adhered on the surface of graphene. The porous graphene supported by NF built a conductively integral highway that is preferable for the charge transfer kinetics, while the hierarchical pores from the SnS nanoflowers and NF are particularly beneficial for mitigating the volume expansion and promoting electrolyte penetration. The as-constructed Ni foam/reduced graphene oxide/SnS (NF/RGO/SnS) composite exhibited dramatically enhanced reversible capacity, remarkable rate capability, and long-term cycling stabilities without the use of any binders and conductive additives. Especially, NF/RGO/SnS composite remained the specific capacity as high as 561.9 mA h g at the current densities of 1000 mA g after continuous tests for 160 cycles, which is much higher than conventional SnS/RGO composite. With the advantages of unique architecture and excellent sodium storage performances, the NF/RGO/SnS composite shows promising application potential in the sodium ion batteries.
通过浸渍法在三维多孔石墨烯上锚定的 SnS 纳米花很容易在泡沫镍 (NF) 上构建,然后通过一步可控的水热生长和温和还原。交联纳米片和丰富的多孔互连的 SnS 纳米花组装成一层连续的网络结构,紧密地附着在石墨烯的表面。NF 支撑的多孔石墨烯构建了一个导电整体高速公路,有利于电荷转移动力学,而 SnS 纳米花和 NF 的分层孔特别有利于减轻体积膨胀和促进电解质渗透。所构建的 Ni 泡沫/还原氧化石墨烯/SnS (NF/RGO/SnS) 复合材料在不使用任何粘结剂和导电添加剂的情况下表现出显著增强的可逆容量、优异的倍率性能和长期循环稳定性。特别是,NF/RGO/SnS 复合材料在连续测试 160 个循环后,在 1000 mA g 的电流密度下仍保持高达 561.9 mA h g 的比容量,远高于传统的 SnS/RGO 复合材料。NF/RGO/SnS 复合材料具有独特的结构和优异的储钠性能,在钠离子电池中具有广阔的应用前景。