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Investigation of Modified Graphene for Energy Storage Applications

机译:储能改性石墨烯的研究

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Lithium-ion batteries (LIB) have been receiving extensive attention because of the high specific energy density for wide applications such as electronic vehicles, commercial mobile electronics, and military applications. In LIB, graphite is the most commonly used anode material; however, lithium-ion intercalation in graphite is limited, hindering the battery charge rate and capacity. To overcome this obstacle, nanostructured anode assembly has been extensively studied to increase the lithium-ion diffusion rate. Among these approaches, high specific surface area metal oxide nanowires connecting nanostructured carbon materials accumulation have shown propitious results for enhanced lithium intercalation. Recently, nanowire/graphene hybrids were developed for the enhancement of LIB performance; however, almost all previous efforts employed nanowires on graphene in a random fashion, which limited lithium-ion diffusion rate. Therefore, we demonstrate a new approach by hydrothermally growing uniform nanowires on graphene aerogel to further improve the performance. This nanowire/graphene aerogel hybrid not only uses the high surface area of the graphene aerogel but also increases the specific surface area for electrode—electrolyte interaction. Therefore, this new nanowire/graphene aerogel hybrid anode material could enhance the specific capacity and charge—discharge rate. Scanning electron microscopy (SEM) and X-ray diffraction (XRD) are used for materials characterization. Battery analyzer and potentio-galvanostat are used for measuring the electrical performance of the battery. The testing results show that nanowire graphene hybrid anode gives significantly improved performance compared to graphene anode.
机译:锂离子电池(LIB)受到了广泛的关注,因为其高比能量密度适用于电子汽车,商用移动电子产品和军事应用等广泛应用。在LIB中,石墨是最常用的阳极材料。但是,锂离子在石墨中的嵌入受到限制,从而阻碍了电池的充电速率和容量。为了克服该障碍,已经对纳米结构阳极组件进行了广泛研究以提高锂离子扩散速率。在这些方法中,连接纳米结构碳材料堆积的高比表面积金属氧化物纳米线已显示出有利于增强锂嵌入的结果。最近,开发了纳米线/石墨烯杂化物以增强LIB性能。然而,几乎所有以前的努力都以随机方式在石墨烯上使用了纳米线,这限制了锂离子的扩散速度。因此,我们展示了一种通过在石墨烯气凝胶上水热生长均匀纳米线以进一步提高性能的新方法。这种纳米线/石墨烯气凝胶混合体不仅利用了石墨烯气凝胶的高表面积,而且还增加了电极-电解质相互作用的比表面积。因此,这种新的纳米线/石墨烯气凝胶混合阳极材料可以提高比容量和充放电速率。扫描电子显微镜(SEM)和X射线衍射(XRD)用于材料表征。电池分析仪和恒电位仪用于测量电池的电气性能。测试结果表明,与石墨烯阳极相比,纳米线石墨烯杂化阳极具有显着改善的性能。

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