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通过从MA'A″C MAX相选择性蚀刻A'将A元素层间掺入MXenes中。

Interlayer Incorporation of A-Elements into MXenes Via Selective Etching of A' from MA'A″C MAX Phases.

作者信息

Bagheri Saman, Lipatov Alexey, Vorobeva Nataliia S, Sinitskii Alexander

机构信息

Department of Chemistry, University of Nebraska-Lincoln, Lincoln, Nebraska 68588, United States.

Department of Chemistry, Biology, and Health Sciences, South Dakota School of Mines and Technology, Rapid City, South Dakota 57701, United States.

出版信息

ACS Nano. 2023 Oct 10;17(19):18747-18757. doi: 10.1021/acsnano.3c02198. Epub 2023 Sep 25.

Abstract

MXenes are a large family of two-dimensional materials with a general formula MXT, where M is a transition metal, X = C and/or N, and T represents surface functional groups. MXenes are synthesized by etching A-elements from layered MAX phases with a composition of MAX. As over 20 different chemical elements were shown to form A-layers in various MAX phases, we propose that they can provide an abundant source of very diverse MXene-based materials. The general strategy for A-modified MXenes relies on the synthesis of MA'A″X MAX phase, in which the higher reactivity of the A'-element compared to that of A″ enables its selective etching, resulting in A″-modified MXT. In general, the A″-element could modify the interlayer spaces of MXene flakes in a form of metallic or oxide species, depending on its chemical identity and synthetic conditions. We demonstrate this strategy by synthesizing Sn-modified TiCT MXene from the TiAlSnC MAX phase, which was used as a model system. Although the incorporation of Sn in the A-layer of TiAlC decreases the MAX phase reactivity, we developed an etching procedure to completely remove Al and produce Sn-modified TiCT MXene. The resulting MXene sheets were of very high quality and exhibited improved environmental stability, which we attribute to the effect of a uniform Sn modification. Finally, we demonstrate a peculiar electrostatic expansion of Sn-modified TiCT accordions, which may find interesting applications in MXene-based nano-electromechanical systems. Overall, these results demonstrate that in addition to different combinations of M and X elements in MAX phases, an A-layer also provides opportunities for the synthesis of MXene-based materials.

摘要

MXenes是一大类二维材料,通式为MXT,其中M为过渡金属,X = C和/或N,T代表表面官能团。MXenes是通过从具有MAX组成的层状MAX相中蚀刻A元素而合成的。由于已证明超过20种不同化学元素可在各种MAX相中形成A层,我们提出它们可以提供丰富多样的基于MXene的材料来源。A修饰MXenes的一般策略依赖于MA'A″X MAX相的合成,其中A'元素与A″元素相比具有更高的反应活性,使其能够被选择性蚀刻,从而得到A″修饰的MXT。一般来说,A″元素可以以金属或氧化物物种的形式修饰MXene薄片的层间空间,这取决于其化学性质和合成条件。我们通过从TiAlSnC MAX相合成Sn修饰的TiCT MXene来证明这一策略,该相被用作模型体系。尽管在TiAlC的A层中掺入Sn会降低MAX相的反应活性,但我们开发了一种蚀刻程序以完全去除Al并制备Sn修饰的TiCT MXene。所得的MXene薄片质量非常高,并且表现出改善的环境稳定性,我们将其归因于均匀Sn修饰的效果。最后,我们展示了Sn修饰的TiCT手风琴状结构的特殊静电膨胀,这可能在基于MXene的纳米机电系统中找到有趣的应用。总体而言,这些结果表明,除了MAX相中M和X元素的不同组合外,A层也为基于MXene的材料合成提供了机会。

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