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首页> 外文期刊>Nanoscale Research Letters >Modifying Reduced Graphene Oxide by Conducting Polymer Through a Hydrothermal Polymerization Method and its Application as Energy Storage Electrodes
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Modifying Reduced Graphene Oxide by Conducting Polymer Through a Hydrothermal Polymerization Method and its Application as Energy Storage Electrodes

机译:水热聚合法通过导电聚合物改性还原氧化石墨烯及其在储能电极中的应用

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We report chemical in situ deposition of conducting polymer poly (3,4-ethylenedioxythiophene) (PEDOT) on reduced graphene oxide (rGO) nanosheets through a simple hydrothermal polymerization method. The functional groups on graphene oxide (GO) were directly employed as an oxidant to trigger the polymerization of 3,4-ethylenedioxythiophene (EDOT), and the GO nanosheets were reduced into rGO accordingly in an aqueous environment. Well anchoring of ultrathin PEDOT on rGO through this oxidant-free method was confirmed by UV-Vis spectrum, FT-IR spectrum, SEM, and TEM analysis. The obvious enhancement of conductivity was observed after the covering of PEDOT on rGO, and this composite showed high conductivity about 88.5?S/cm. The electrochemical performance results revealed that rGO/PEDOT composite electrode exhibits high specific capacitance about 202.7?F/g. The good synergetic effect between PEDOT and rGO also makes sure highly stable reversibility of composite electrode during charging/discharging process, and more than 90% initial capacitance retains after 9000 times cycles. In addition, the electrode based on rGO/PEDOT deposited on the cotton fabric shows excellent flexible ability with the evidence that 98% of the initial capacitance of electrode maintained after three thousands of free bending, which shows promising energy storage performance for flexible devices. .
机译:我们报告了通过简单的水热聚合方法在还原的氧化石墨烯(rGO)纳米片上的导电聚合物聚(3,4-乙撑二氧噻吩)(PEDOT)的化学原位沉积。氧化石墨烯(GO)上的官能团直接用作氧化剂来引发3,4-乙撑二氧噻吩(EDOT)的聚合,因此,GO纳米片在水性环境中被还原为rGO。通过紫外-可见光谱,FT-IR光谱,SEM和TEM分析证实了通过这种无氧化剂方法将超薄PEDOT很好地锚定在rGO上。在rGO上覆盖PEDOT后,观察到电导率明显提高,该复合材料显示出约88.5?S / cm的高电导率。电化学性能结果表明,rGO / PEDOT复合电极表现出约202.7?F / g的高比电容。 PEDOT和rGO之间的良好协同作用还确保了复合电极在充电/放电过程中具有高度稳定的可逆性,并且在9000次循环后保留了90%以上的初始电容。此外,沉积在棉织物上的基于rGO / PEDOT的电极显示出出色的柔韧性,证明了在经过三千次自由弯曲后,电极初始电容的98%得以保持,这表明柔性器件具有良好的储能性能。 。

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