首页> 外文期刊>Chemistry: A European journal >Graphene-assisted room-temperature synthesis of 2D nanostructured hybrid electrode materials: Dramatic acceleration of the formation rate of 2D metal oxide nanoplates induced by reduced graphene oxide nanosheets
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Graphene-assisted room-temperature synthesis of 2D nanostructured hybrid electrode materials: Dramatic acceleration of the formation rate of 2D metal oxide nanoplates induced by reduced graphene oxide nanosheets

机译:石墨烯辅助的2D纳米结构混合电极材料的室温合成:还原氧化石墨烯纳米片诱导的2D金属氧化物纳米板形成速率的显着加速

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A new prompt room temperature synthetic route to 2D nanostructured metal oxide-graphene-hybrid electrode materials can be developed by the application of colloidal reduced graphene oxide (RGO) nanosheets as an efficient reaction accelerator for the synthesis of δ-MnO_2 2D nanoplates. Whereas the synthesis of the 2D nanostructured δ-MnO_2 at room temperature requires treating divalent manganese compounds with persulfate ions for at least 24h, the addition of RGO nanosheet causes a dramatic shortening of synthesis time to 1h, underscoring its effectiveness for the promotion of the formation of 2D nanostructured metal oxide. To the best of our knowledge, this is the first example of the accelerated synthesis of 2D nanostructured hybrid material induced by the RGO nanosheets. The observed acceleration of nanoplate formation upon the addition of RGO nanosheets is attributable to the enhancement of the oxidizing power of persulfate ions, the increase of the solubility of precursor MnCO_3, and the promoted crystal growth of δ-MnO _2 2D nanoplates. The resulting hybridization between RGO nanosheets and δ-MnO_2 nanoplates is quite powerful not only in increasing the surface area of manganese oxide nanoplate but also in enhancing its electrochemical activity. Of prime importance is that the present δ-MnO_2-RGO nanocomposites show much superior electrode performance over most of 2D nanostructured manganate systems including a similar porous assembly of RGO and layered MnO_2 nanosheets. This result underscores that the present RGO-assisted solution-based synthesis can provide a prompt and scalable method to produce nanostructured hybrid electrode materials.
机译:通过应用胶体还原氧化石墨烯(RGO)纳米片作为合成δ-MnO_22D纳米板的有效反应促进剂,可以开发出一种快速的室温合成方法,用于二维纳米结构的金属氧化物-石墨烯-杂化电极材料。室温下二维纳米结构δ-MnO_2的合成需要用过硫酸盐离子处理二价锰化合物至少24h,而添加RGO纳米片则将合成时间大幅缩短至1h,从而突出了其促进形成的有效性。 2D纳米结构的金属氧化物。据我们所知,这是由RGO纳米片诱导的2D纳米结构杂化材料加速合成的第一个示例。加入RGO纳米片后观察到的纳米片形成加速归因于过硫酸根离子的氧化能力增强,前体MnCO_3的溶解度增加以及δ-MnO_2 2D纳米片的晶体生长加快。 RGO纳米片和δ-MnO_2纳米片之间的杂交不仅在增加氧化锰纳米片的表面积方面而且在增强其电化学活性方面都非常强大。最重要的是,目前的δ-MnO_2-RGO纳米复合材料比大多数2D纳米结构的锰酸盐系统(包括类似的RGO多孔组件和MnO_2纳米片状多孔组件)表现出优异的电极性能。该结果强调,当前的基于RGO的基于溶液的合成可以提供一种迅速且可扩展的方法来生产纳米结构的混合电极材料。

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