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插层对ML-TiCT MXene性能及摩擦性能的影响。

Effects of Intercalation on ML-TiCT MXene Properties and Friction Performance.

作者信息

Arole Kailash, Pas Savannah E, Thakur Ratul Mitra, Amiouny Lara A, Kabir M Humaun, Dujovic Milos, Radovic Miladin, Lutkenhaus Jodie L, Green Micah J, Liang Hong

机构信息

Department of Materials Science and Engineering, Texas A&M University, College Station, Texas 77843, United States.

Artie McFerrin Department of Chemical Engineering, Texas A&M University, College Station, Texas 77843, United States.

出版信息

ACS Appl Mater Interfaces. 2024 Nov 20;16(46):64156-64165. doi: 10.1021/acsami.4c12659. Epub 2024 Nov 6.

Abstract

Intercalation in two-dimensional (2D) materials can modify their physical, chemical, and electronic properties. This modification enables the tailoring of 2D material characteristics, enhancing their performance and expanding their applications in various fields. The friction performance of 2D materials such as MoS and graphite has a strong dependence on their interlayer spacing, and they exhibit an increase in -spacing associated with a reduction in friction performance. The ability to control the interlayer spacing of TiCT MXene has proven beneficial for energy storage applications such as batteries and supercapacitors, but no one has utilized this control of interlayer spacing for lubrication. In this study, we demonstrate that interlayer spacing of multilayer (ML) TiCT MXene can be controlled through chemical intercalation and its direct effects on the electrical conductivity and friction performance. We observed a notable decrease in electrical conductivity in vacuum-filtered ML-TiCT MXene films, which was attributed to an increased internal resistance resulting from the expansion of the interlayer gap. We also found a significant reduction in the coefficient of friction for ML-TiCT MXene with an increased -spacing. This reduction is attributed to a weakened attraction of individual ML-TiCT MXene layers (intercalated). Under a tangential force, it becomes easier to slide within the larger interlayer gap with weakened van der Waals forces. This work provides insights into the tunability of MXene properties through interlayer spacing, offering potential applications requiring materials with specific electrical and friction characteristics.

摘要

二维(2D)材料中的插层可以改变其物理、化学和电子性质。这种改性能够定制二维材料的特性,提高其性能并扩大其在各个领域的应用。诸如二硫化钼(MoS)和石墨等二维材料的摩擦性能强烈依赖于它们的层间距,并且它们表现出层间距增加伴随着摩擦性能降低。已证明控制TiCT MXene的层间距对于电池和超级电容器等储能应用是有益的,但尚未有人将这种层间距控制用于润滑。在本研究中,我们证明了多层(ML)TiCT MXene的层间距可以通过化学插层来控制,以及其对电导率和摩擦性能的直接影响。我们观察到真空过滤的ML-TiCT MXene薄膜的电导率显著下降,这归因于层间间隙扩大导致的内阻增加。我们还发现,随着层间距增加,ML-TiCT MXene的摩擦系数显著降低。这种降低归因于单个ML-TiCT MXene层(插层的)之间吸引力减弱。在切向力作用下,在具有减弱的范德华力的较大层间间隙内滑动变得更容易。这项工作为通过层间距调节MXene性质提供了见解,为需要具有特定电学和摩擦特性材料的潜在应用提供了可能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a1ff/11583124/f56e3f93b734/am4c12659_0001.jpg

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