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抗坏血酸诱导的碳化钛TiCT MXene纤维卷曲

Ascorbic acid-induced fiber-scrolling of titanium carbide TiCT MXene.

作者信息

Cao Jinxin, Wang Yuru, Wei Bingqing, Ye Jiaxin, Zhang Qing

机构信息

Institutes of Physical Science and Information Technology, Anhui University Hefei 230039 Anhui China

Department of Mechanical Engineering, University of Delaware Newark Delaware 19716 USA.

出版信息

RSC Adv. 2022 Aug 3;12(33):21600-21608. doi: 10.1039/d2ra03174d. eCollection 2022 Jul 21.

Abstract

Changing the morphology of two-dimensional materials often offers an efficient and effective means to exploit their electronic and mechanical properties. Two-dimensional materials such as graphene can be scrolled into one-dimensional fibers simple sonication. Unfortunately, scrolling MXene nanosheets into fibers is quite challenging, especially TiCT composed of three layers of titanium atoms and two layers of carbon atoms. Herein, we report a new method to fabricate MXene fibers ascorbic acid (AA) induced scrolling of TiCT nanosheets. An unusual AA-TiCT interaction is discovered in that intercalated AA molecules bind to and interact with the TiCT surface in the form of a hydrogen bonding-bonded assembly instead of as individual molecules, and a sheet-scrolling mechanism is proposed based on this interaction. The as-obtained MXene fibers exhibit a compact cross-section, and the diameter can be tailored from hundreds of nanometers to several micrometers through tuning the MXene/AA ratio. Moreover, the storage modulus of the MXene-fiber sponge attains its maximum value of ∼1 MPa when a unique morphology comprising both fibers and not-yet-scrolled sheets is presented. This work offers a new strategy of fiber-shaping MXenes for applications in structural composites and flexible electronics.

摘要

改变二维材料的形态通常为开发其电子和机械性能提供了一种高效且有效的手段。诸如石墨烯之类的二维材料可通过简单的超声处理卷成一维纤维。不幸的是,将MXene纳米片卷成纤维颇具挑战性,尤其是由三层钛原子和两层碳原子组成的TiCT。在此,我们报道了一种通过抗坏血酸(AA)诱导TiCT纳米片滚动来制备MXene纤维的新方法。发现了一种不寻常的AA-TiCT相互作用,即插入的AA分子以氢键键合组装体的形式与TiCT表面结合并相互作用,而非单个分子形式,并基于这种相互作用提出了一种片层滚动机制。所获得的MXene纤维具有致密的横截面,并且通过调整MXene/AA比例,其直径可从数百纳米调整至几微米。此外,当呈现出包含纤维和尚未卷曲片层的独特形态时,MXene纤维海绵的储能模量达到其最大值~1 MPa。这项工作为MXene在结构复合材料和柔性电子学中的应用提供了一种纤维成型的新策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ca8/9346623/3444757c79b9/d2ra03174d-f1.jpg

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