K+ Intercalation of NH4HF2‐Exfoliated Ti3C2 MXene as Binder‐Free Electrodes with High Electrochemical Capacitance

Jingbo Li, Yu Liu, Fang Xu, Junping Hu, N. Chen, G. Du, C. Jiang
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引用次数: 11

Abstract

As a 2D material, Ti3C2 (MXene) has been recently used as electrodes for electrochemical capacitors. Herein, a two‐step procedure is used to obtain a highly opened layer structure for Ti3C2, which differs from the methods used in the literature for synthesizing exfoliated MXene. First, the mild NH4HF2 etching agent is used to prepare the regular Ti3C2 MXene. Second, KOH is added into the obtained solution for K+ to intercalate the MXene. The K+ intercalation is found to greatly increase the (002) crystal planar spacing of the Ti3C2 from 10.8 to 12.4 Å. More importantly, this K+‐intercalated MXene exhibits a highly opened layer structure, whereas the regular MXene only has a partially opened layer structure. Consequently, the former is expected to allow much more active sites exposed to liquid electrolyte, and also facilitates remarkably higher ion and electron transport efficiency. To investigate their electrochemical capacitance properties, the regular and K+‐intercalated Ti3C2 MXenes are used to fabricate binder‐free electrodes on nickel foams by an electrophoretic deposition method. The K+‐intercalated MXene‐based electrode is found to have twice higher specific capacitance than the regular MXene. Furthermore, the K+‐intercalated Ti3C2 MXene‐based electrode exhibits an excellent cyclic stability.
NH4HF2 -剥离Ti3C2 - MXene作为无粘结剂高电化学电容电极的K+插层研究
作为一种二维材料,Ti3C2 (MXene)最近被用作电化学电容器的电极。本文采用两步方法获得了Ti3C2的高度开放层结构,这与文献中合成剥离MXene的方法不同。首先,采用温和的NH4HF2蚀刻剂制备规则的ti3c2mxene。其次,在得到的溶液中加入KOH,使K+嵌入MXene。K+的插入使Ti3C2的(002)晶面间距从10.8增加到12.4 Å。更重要的是,这种K+‐插入的MXene具有高度开放的层状结构,而常规的MXene只有部分开放的层状结构。因此,前者有望允许更多的活性位点暴露在液体电解质中,并且还有助于显着提高离子和电子的传输效率。为了研究其电化学电容性能,采用电泳沉积法在泡沫镍表面制备了常规和K+插层Ti3C2 MXenes无粘结剂电极。发现K+插入MXene电极的比电容比常规MXene高两倍。此外,K+插层Ti3C2 MXene基电极表现出优异的循环稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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