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3D nanotube-structured Ni@MnO_2 electrodes: Toward enhanced areal capacitance of planar supercapacitors

机译:3D纳米管结构的Ni @ MnO_2电极:增强平面超级电容器的面电容

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摘要

Rationally engineering three dimensional (3D) architrctures of transition-metal oxides (TMOs) is of great concern for the effective enhancement of electrochemical capacity, nevertheless, it is still challenging to selectively construct well-defined 3D architectured electrode materials in planar-configuration supercapacitors (SCs). Herein, we demonstrated a novel 3D nanotube-structured Ni@MnO2 electrode with interdigital configuration for high-performance planar supercapacitors. By combining transfer printing, alloying-dealloying and electrodeposition methods, 3D architecture of nanotube-structured Ni@MnO2 was subtly built on flexible Kapton substrate. The highly conductive Ni nanotubes embedded in MnO2 nanoflakes offer efficient electron collection paths, endowing the 3D electrodes with low internal resistance. Simultaneously, this 3D nanotube architecture provides multiple channels for electrolyte penetration and large active surface for Faradaic reactions. For these reasons, 3D SCs deliver remarkably enhanced areal capacitance of 10.75 mF cm(-2), 2.4 times of the pristine SCs without 3D architecture. Moreover, 3D SCs exhibit desirable flexibility under different bending conditions, which indicates the potential feasibility of planar-configuration SCs as energy-storage components for wearable electronics.
机译:对于有效增强电化学容量,合理设计过渡金属氧化物(TMO)的三维(3D)架构非常重要,尽管如此,在平面配置超级电容器中选择性地构建定义良好的3D架构电极材料仍然是一项挑战( SC)。在这里,我们展示了一种新型的3D纳米管结构的Ni @ MnO2电极,该电极具有叉指结构,用于高性能平面超级电容器。通过结合转印,合金化脱合金和电沉积方法,在柔性Kapton基板上巧妙地构建了纳米管结构的Ni @ MnO2的3D结构。嵌入MnO2纳米薄片中的高导电Ni纳米管提供了有效的电子收集路径,使3D电极具有低内阻。同时,这种3D纳米管架构提供了多个通道用于电解质渗透,并为法拉第反应提供了较大的活性表面。由于这些原因,3D SC可以提供10.75 mF cm(-2)的显着增强的面积电容,是没有3D架构的原始SC的2.4倍。此外,3D SC在不同的弯曲条件下表现出理想的柔韧性,这表明平面配置SC作为可穿戴电子设备的储能组件的潜在可行性。

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