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用于柔性超级电容器的具有增强性能和电沉积附着力的纳米多孔铝/金骨架以支撑二氧化锰

Nano-porous Al/Au skeleton to support MnO with enhanced performance and electrodeposition adhesion for flexible supercapacitors.

作者信息

Huang Du, Lu Zhenya, Xu Qian, Liu Xingyue, Yi Wenbin, Gao Junning, Chen Zhiwu, Wang Xin, Fu Xiaoyi

机构信息

School of Materials Science and Engineering, South China University of Technology Guangzhou 510641 China

出版信息

RSC Adv. 2021 Jun 24;11(35):21405-21413. doi: 10.1039/d1ra01923f. eCollection 2021 Jun 15.

Abstract

A nano-porous Al/Au skeleton is constructed to effectively improve the utilization rate of the active MnO and the overall adhesion between the current collector and MnO in an electrodeposition system. The Al/Au current collector is prepared by first forming a nano-porous structure on the surface of Al foil through etching modification, and subsequently coating an ultra-thin Au layer onto the Al foil. The active MnO is electrodeposited on the Al/Au current collector to fabricate a novel Al/Au/MnO electrode. The nano-porous skeleton supports MnO to grow autonomously inside-out. The ultra-thin Au layer acts as a transition layer to improve the overall conductivity of the current collector (0.35 Ω m) and to improve the adhesion with MnO as well. Owing to the highly porous structure, the electrochemical properties of the electrode are greatly improved, as evidenced by a remarkable specific capacitance of 222.13 mF cm at 0.2 mA cm and excellent rate capability of 63% capacitance retention at 6.0 mA cm. Furthermore, the assembled solid-state symmetric supercapacitor exhibits a high energy density of 0.68 mW h cm, excellent cyclic stability (86.3% capacitance retention after 2000 cycles), and prominent flexibility.

摘要

构建了一种纳米多孔Al/Au骨架,以有效提高活性MnO的利用率以及在电沉积系统中集流体与MnO之间的整体附着力。Al/Au集流体的制备方法是先通过蚀刻改性在铝箔表面形成纳米多孔结构,随后在铝箔上涂覆一层超薄Au层。将活性MnO电沉积在Al/Au集流体上,制备出新型Al/Au/MnO电极。纳米多孔骨架支撑MnO由内向外自主生长。超薄Au层作为过渡层,可提高集流体的整体电导率(0.35 Ω·m)并改善与MnO的附着力。由于具有高度多孔的结构,电极的电化学性能得到了极大改善,在0.2 mA·cm²时具有222.13 mF·cm²的显著比电容,在6.0 mA·cm²时具有63%的电容保持率,展现出优异的倍率性能。此外,组装的固态对称超级电容器具有0.68 mW·h·cm³的高能量密度、优异的循环稳定性(2000次循环后电容保持率为86.3%)以及出色的柔韧性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/77d3/9034163/af11096486b8/d1ra01923f-f1.jpg

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