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渗滤对二氧化锰纳米片和碳纳米管复合材料制备的超级电容器电极电容的影响。

Effect of percolation on the capacitance of supercapacitor electrodes prepared from composites of manganese dioxide nanoplatelets and carbon nanotubes.

机构信息

CRANN and AMBER Research Centres, Trinity College Dublin , Dublin 2, Ireland.

出版信息

ACS Nano. 2014 Sep 23;8(9):9567-79. doi: 10.1021/nn5038543. Epub 2014 Sep 11.

Abstract

Here we demonstrate significant improvements in the performance of supercapacitor electrodes based on 2D MnO2 nanoplatelets by the addition of carbon nanotubes. Electrodes based on MnO2 nanoplatelets do not display high areal capacitance because the electrical properties of such films are poor, limiting the transport of charge between redox sites and the external circuit. In addition, the mechanical strength is low, limiting the achievable electrode thickness, even in the presence of binders. By adding carbon nanotubes to the MnO2-based electrodes, we have increased the conductivity by up to 8 orders of magnitude, in line with percolation theory. The nanotube network facilitates charge transport, resulting in large increases in capacitance, especially at high rates, around 1 V/s. The increase in MnO2 specific capacitance scaled with nanotube content in a manner fully consistent with percolation theory. Importantly, the mechanical robustness was significantly enhanced, allowing the fabrication of electrodes that were 10 times thicker than could be achieved in MnO2-only films. This resulted in composite films with areal capacitances up to 40 times higher than could be achieved with MnO2-only electrodes.

摘要

在这里,我们通过添加碳纳米管,显著提高了基于二维 MnO2 纳米片的超级电容器电极的性能。基于 MnO2 纳米片的电极没有表现出高的面电容,因为这些薄膜的电学性能较差,限制了在氧化还原位点和外部电路之间的电荷传输。此外,机械强度低,限制了可实现的电极厚度,即使存在粘结剂也是如此。通过向基于 MnO2 的电极中添加碳纳米管,我们将电导率提高了 8 个数量级,与渗流理论一致。纳米管网络促进了电荷传输,导致电容的大幅增加,尤其是在高速率下,约为 1 V/s。MnO2 比电容的增加与渗流理论完全一致的纳米管含量成比例。重要的是,机械强度显著增强,允许制造比仅使用 MnO2 时厚 10 倍的电极。这导致复合薄膜的面电容比仅使用 MnO2 电极时高 40 倍。

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