具有厚度无关电容的垂直mxene微型超级电容器。

Haichao Huang, Yanting Xie, Da Xiong, Ningjun Chen, Xiang Chu, Xinglin Jiang, Haitao Zhang, Weiqing Yang
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引用次数: 0

摘要

由于其高导电性、丰富的表面化学性质和高容量,MXenes作为一种新兴的二维(2D)微超级电容器(MSCs)材料显示出巨大的潜力。然而,在薄膜形成过程中,MXene片固有地倾向于平铺在衬底上,组装成紧凑的堆叠结构,这阻碍了离子的接近并延长了离子的传输路径,导致电化学性能高度依赖于薄膜的厚度。本文采用液氮辅助冷冻干燥的方法,制备了一种具有优异电化学性能的垂直排列Ti3C2Tx MXene微超级电容器。二维MXene薄片的垂直排列允许定向离子传输,使基于垂直MXene的MSCs即使在厚膜中也能表现出与厚度无关的电化学性能。此外,MSCs在10 mV s-1下具有87 mF cm-2的高面电容,并在10,000次充放电循环后具有优良的~ 87.4%的稳定性。此外,这里提出的垂直mxene方法是可扩展的,可以扩展到其他涉及定向传输的系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Vertical-MXene based micro-supercapacitors with thickness-independent capacitance.
MXenes have shown great potential as an emerging two-dimensional (2D) material for micro-supercapacitors (MSCs) due to their high conductivity, rich surface chemistry, and high capacity. However, MXene sheets inherently tend to lay flat on the substrate during film formation to assemble into compact stacked structures, which hinders ion accessibility and prolongs ion transport paths, leading to highly dependent electrochemical properties on the thickness of the film. Here, we demonstrate a vertically aligned Ti3C2Tx MXene based micro-supercapacitor with an excellent electrochemical performance by a liquid nitrogen-assisted freeze-drying method. The vertical arrangement of the 2D MXene sheets allows for directional ion transport, enabling the vertical-MXene based MSCs to exhibit thickness-independent electrochemical properties even in thick films. In addition, the MSCs displayed a high areal capacitance of 87 mF cm-2 at 10 mV s-1 along with an excellent stability of ∼87.4% after 10 000 charge-discharge cycles. Furthermore, the vertical-MXene approach proposed here is scalable and can be extended to other systems involving directional transport.
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