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1-D Structured Flexible Supercapacitor Electrodes with Prominent Electronic/Ionic Transport Capabilities

机译:具有突出的电子/离子传输能力的一维结构化柔性超级电容器电极

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摘要

A highly efficient 1-D flexible supercapacitor with a stainless steel mesh (SSM) substrate is demonstrated. Indium tin oxide (ITO) nanowires are prepared on the surface of the stainless steel fiber (SSF), and MnO2 shell layers are coated onto the ITO/SSM electrode by means of electrodeposition. The ITO NWs, which grow radially on the SSF, are single-crystalline and conductive enough for use as a current collector for MnO2-based supercapacitors. A flake-shaped, nanoporous, and uniform MnO2 shell layer with a thickness of ~130 nm and an average crystallite size of ~2 nm is obtained by electrodeposition at a constant voltage. The effect of the electrode geometry on the supercapacitor properties was investigated using electrochemical impedance spectroscopy, cyclic voltammetry, and a galvanostatic charge/discharge study. The electrodes with ITO NWs exhibit higher specific capacitance levels and good rate capability owing to the superior electronic/ionic transport capabilities resulting from the open pore structure. Moreover, the use of a porous mesh substrate (SSM) increases the specific capacitance to 667 F g~(-1) at 5 mV s~(-1). In addition, the electrode with ITO NWs and the SSM shows very stable cycle performance (no decrease in the specific capacitance after 5000 cycles).
机译:展示了一种具有不锈钢网(SSM)基板的高效一维柔性超级电容器。在不锈钢纤维(SSF)的表面上制备氧化铟锡(ITO)纳米线,并通过电沉积将MnO2壳层涂覆到ITO / SSM电极上。在SSF上径向生长的ITO NW是单晶的,并且导电性足以用作基于MnO2的超级电容器的集电器。通过在恒定电压下进行电沉积,可获得片状,纳米多孔且均匀的MnO2壳层,其厚度约为130 nm,平均微晶尺寸约为2 nm。使用电化学阻抗谱,循环伏安法和恒电流充电/放电研究,研究了电极几何形状对超级电容器性能的影响。具有ITO NW的电极由于具有开孔结构而具有优异的电子/离子传输能力,因此具有较高的比电容水平和良好的倍率性能。此外,在5 mV s〜(-1)的情况下,使用多孔网格基板(SSM)可将比电容提高到667 F g〜(-1)。此外,具有ITO NW和SSM的电极显示出非常稳定的循环性能(5000次循环后比电容没有降低)。

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