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通过终止和插层来控制 MXenes 的电子性质。

Control of MXenes' electronic properties through termination and intercalation.

机构信息

Department of Materials Science & Engineering, Drexel University, Philadelphia, PA, 19104, USA.

A.J. Drexel Nanomaterials Institute, Drexel University, Philadelphia, PA, 19104, USA.

出版信息

Nat Commun. 2019 Jan 31;10(1):522. doi: 10.1038/s41467-018-08169-8.

Abstract

MXenes are an emerging family of highly-conductive 2D materials which have demonstrated state-of-the-art performance in electromagnetic interference shielding, chemical sensing, and energy storage. To further improve performance, there is a need to increase MXenes' electronic conductivity. Tailoring the MXene surface chemistry could achieve this goal, as density functional theory predicts that surface terminations strongly influence MXenes' Fermi level density of states and thereby MXenes' electronic conductivity. Here, we directly correlate MXene surface de-functionalization with increased electronic conductivity through in situ vacuum annealing, electrical biasing, and spectroscopic analysis within the transmission electron microscope. Furthermore, we show that intercalation can induce transitions between metallic and semiconductor-like transport (transitions from a positive to negative temperature-dependence of resistance) through inter-flake effects. These findings lay the groundwork for intercalation- and termination-engineered MXenes, which promise improved electronic conductivity and could lead to the realization of semiconducting, magnetic, and topologically insulating MXenes.

摘要

MXenes 是一类新兴的高导电性二维材料,在电磁干扰屏蔽、化学传感和能量存储等领域表现出了最先进的性能。为了进一步提高性能,需要提高 MXenes 的电子导电性。通过调整 MXene 的表面化学可以实现这一目标,因为密度泛函理论预测表面终端强烈影响 MXenes 的费米能级态密度,从而影响 MXenes 的电子导电性。在这里,我们通过原位真空退火、电偏置和透射电子显微镜中的光谱分析,直接将 MXene 表面去功能化与电子电导率的提高相关联。此外,我们还表明,插层可以通过层间效应诱导金属和半导体-like 输运之间的转变(从电阻随温度升高而升高到电阻随温度升高而降低的转变)。这些发现为插层和端基工程化的 MXenes 奠定了基础,有望提高电子电导率,并可能导致半导体、磁性和拓扑绝缘 MXenes 的实现。

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