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Metallocene/carbon hybrids prepared by a solution process for supercapacitor applications

机译:通过用于超级电容器应用的溶液方法制备的茂金属/碳杂化物

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摘要

Efficient and scalable solution-based processes are not generally available to integrate well-studied pseudocapacitive materials (i.e., metal oxides and conducting polymers) with other components such as porous carbon, mainly because these classes of pseudocapacitive systems have poor solubilities in solvents and exhibit no specific interactions with the other component. Here we report, for the first time, the integration of a metallocene polymer, polyvinylferrocene (PVF), with carbon nanotubes (CNTs) via a simple solution process for supercapacitor applications. The solution processability of the PVF/CNT hybrid is due to the high solubilities of PVF in organic solvents and the unique ability of the metallocene/carbon system to form stable dispersions through the π–π stacking interactions between the two components. The nanostructure and electrochemical properties of the hybrid can be manipulated systematically by adjusting the composition of the dispersion. The hybrid with the optimized composition exhibits unusually high capacitance (1452 F g[superscript −1]) and energy density (79.5 W h kg[superscript −1]) obtained in a standard two-electrode configuration, outperforming previously reported pseudocapacitive materials.
机译:通常无法使用有效且可扩展的基于解决方案的方法来将经过充分研究的假电容材料(即金属氧化物和导电聚合物)与其他成分(例如多孔碳)集成在一起,这主要是因为这些类的假电容系统在溶剂中的溶解性较差,并且不表现出与其他组件的特定交互。在这里,我们首次报告了通过一种用于超级电容器应用的简单解决方法,将茂金属聚合物聚乙烯二茂铁(PVF)与碳纳米管(CNT)集成在一起。 PVF / CNT杂化物的溶液可加工性归因于PVF在有机溶剂中的高溶解度以及茂金属/碳体系通过两种组分之间的π-π堆积相互作用形成稳定分散体的独特能力。杂化物的纳米结构和电化学性质可以通过调节分散体的组成来系统地控制。具有优化成分的混合动力车在标准的两电极配置下表现出异常高的电容(1452 F g [上标-1])和能量密度(79.5 W h kg [上标-1]),优于先前报道的伪电容材料。

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