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Vertically aligned ZnO nanorod core-polypyrrole conducting polymer sheath and nanotube arrays for electrochemical supercapacitor energy storage

机译:垂直排列的ZnO纳米棒核-聚吡咯导电聚合物鞘和纳米管阵列用于电化学超级电容器储能

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摘要

Nanocomposite electrodes having three-dimensional (3-D) nanoscale architecture comprising of vertically aligned ZnO nanorod array core-polypyrrole (PPy) conducting polymer sheath and the vertical PPy nanotube arrays have been investigated for supercapacitor energy storage. The electrodes in the ZnO nanorod core-PPy sheath structure are formed by preferential nucleation and deposition of PPy layer over hydrothermally synthesized vertical ZnO nanorod array by controlled pulsed current electropolymerization of pyrrole monomer under surfactant action. The vertical PPy nanotube arrays of different tube diameter are created by selective etching of the ZnO nanorod core in ammonia solution for different periods. Cyclic voltammetry studies show high areal-specific capacitance approximately 240 mF.cm-2 for open pore and approximately 180 mF.cm-2 for narrow 30-to-36-nm diameter PPy nanotube arrays attributed to intensive faradic processes arising from enhanced access of electrolyte ions through nanotube interior and exterior. Impedance spectroscopy studies show that capacitive response extends over larger frequency domain in electrodes with PPy nanotube structure. Simulation of Nyquist plots by electrical equivalent circuit modeling establishes that 3-D nanostructure is better represented by constant phase element which accounts for the inhomogeneous electrochemical redox processes. Charge-discharge studies at different current densities establish that kinetics of the redox process in PPy nanotube electrode is due to the limitation on electron transport rather than the diffusive process of electrolyte ions. The PPy nanotube electrodes show deep discharge capability with high coulomb efficiency and long-term charge-discharge cyclic studies show nondegrading performance of the specific areal capacitance tested for 5,000 cycles.
机译:已经研究了具有三维(3-D)纳米级结构的纳米复合电极,该结构由垂直排列的ZnO纳米棒阵列芯-聚吡咯(PPy)导电聚合物护套和垂直PPy纳米管阵列组成,用于超级电容器储能。 ZnO纳米棒核-PPy鞘结构中的电极是通过在表面活性剂作用下吡咯单体的受控脉冲电流电聚合在水热合成的垂直ZnO纳米棒阵列上优先沉积和沉积PPy层而形成的。通过在氨溶液中选择性蚀刻ZnO纳米棒核不同的时间,可以创建不同管径的垂直PPy纳米管阵列。循环伏安法研究显示,对于开孔,较高的面积比电容约为240 mF.cm -2 ,对于30至36nm的窄孔,约为180 mF.cm -2 直径为PPy的纳米管阵列归因于密集的法拉第过程,这是由于电解质离子通过纳米管内部和外部的访问增加而引起的。阻抗谱研究表明,在具有PPy纳米管结构的电极中,电容响应在较大的频域上扩展。通过等效电路模型对Nyquist曲线进行模拟,可以确定3-D纳米结构可以更好地用恒定相元素表示,这是电化学反应过程不均匀的原因。在不同电流密度下的充放电研究表明,PPy纳米管电极中氧化还原过程的动力学是由于对电子传输的限制,而不是电解质离子的扩散过程。 PPy纳米管电极显示出具有高库仑效率的深放电能力,长期的充放电循环研究表明,经过5,000次循环测试的比面积电容的不降解性能。

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