石墨烯诱导的铂箔表面软化和纳米结构演变

IF 3.4 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Advanced Engineering Materials Pub Date : 2024-11-08 DOI:10.1002/adem.202401053
Jad Yaacoub, Mitisha Surana, Sameh Tawfick
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引用次数: 0

摘要

虽然之前人们认为,通过化学气相沉积(CVD)在金属薄膜上生长石墨烯可以通过硬化和硬化来保护表面,但在这项研究中,报告了一种不同寻常的相反效果。在此,我们使用纳米压痕来研究其机理。在此,我们利用纳米压痕研究了石墨烯覆盖铂箔的力学行为。研究了使用未稀释和稀释甲烷流的两种石墨烯生长配方,旨在分别实现块体或表面介导的石墨烯生长机制。与之前的报道相反,当使用原子力显微镜(AFM)提取的真实压痕接触面积进行估计时,两种配方中,被石墨烯覆盖的Pt表面的弹性模量比未被石墨烯覆盖的Pt表面的弹性模量降低了17%。通过横断面透射电子显微镜(TEM),揭示了导致刚度下降的亚表面多层,并解释了这些观察结果和层形成的机制。因此,在本研究中,强调了石墨烯CVD对金属表面硬化的例外情况,特别是在具有高碳溶解度的金属的情况下。此外,在本研究中,描述了将横截面透射电镜、原子力显微镜的拓扑扫描和纳米压痕的原始载荷-位移数据相结合的方法,以提供材料表面力学行为的完整、多尺度说明。
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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Graphene-Induced Surface Softening and Nanostructure Evolution of Platinum Foils

While it has been previously accepted that graphene growth on metal films by chemical vapor deposition (CVD) protects the surfaces by stiffening and hardening, in this study, an unusual opposite effect is reported. Herein, we use nanoindentation to study the mechaniported. Herein, we use nanoindentation to study the mechanical behavior of graphene-covered platinum foils. Two graphene growth recipes using undiluted and diluted methane flow are studied, aiming to achieve a bulk or a surface-mediated graphene growth mechanism, respectively. Contrary to previous reports, a 17% decrease is observed in the elastic modulus of the Pt surfaces when covered by graphene compared to graphene-free regions for both recipes, when using the real indentation contact area extracted via atomic force microscopy (AFM) for the estimation. By performing cross-sectional transmission electron microscopy (TEM), subsurface multilayers responsible for the decrease in stiffness are revealed and these observations and the mechanism of layer formation are explained. Hence, in this study, it is highlighted that surface stiffening of metals by graphene CVD has exceptions, especially in the case of metals with high carbon solubility. Moreover, in this study, approaches for combining cross-sectional TEM, topological scans from AFM, and raw load–displacement data from nanoindentation to provide a complete, multiscale elucidation of the mechanical behavior of a material surface are described.

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来源期刊
Advanced Engineering Materials
Advanced Engineering Materials 工程技术-材料科学:综合
CiteScore
5.70
自引率
5.60%
发文量
544
审稿时长
1.7 months
期刊介绍: Advanced Engineering Materials is the membership journal of three leading European Materials Societies - German Materials Society/DGM, - French Materials Society/SF2M, - Swiss Materials Federation/SVMT.
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