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开发一种用于原位监测二维材料在液态金属催化剂上生长的反应器,采用同步加速器X射线散射、拉曼光谱和光学显微镜技术。

Development of a reactor for the in situ monitoring of 2D materials growth on liquid metal catalysts, using synchrotron x-ray scattering, Raman spectroscopy, and optical microscopy.

作者信息

Saedi Mehdi, de Voogd J M, Sjardin A, Manikas A, Galiotis C, Jankowski M, Renaud G, La Porta F, Konovalov O, van Baarle G J C, Groot I M N

机构信息

Catalysis & Surface Chemistry (CASC), Leiden Institute of Chemistry (LIC), Leiden University, Einsteinweg 55, 2333 CC Leiden, The Netherlands.

Leiden Probe Microscopy (LPM), Kenauweg 21, 2331 BA Leiden, The Netherlands.

出版信息

Rev Sci Instrum. 2020 Jan 1;91(1):013907. doi: 10.1063/1.5110656.

Abstract

Liquid metal catalysts (LMCats) (e.g., molten copper) can provide a new mass-production method for two-dimensional materials (2DMs) (e.g., graphene) with significantly higher quality and speed and lower energy and material consumption. To reach such technological excellence, the physicochemical properties of LMCats and the growth mechanisms of 2DMs on LMCats should be investigated. Here, we report the development of a chemical vapor deposition (CVD) reactor which allows the investigation of ongoing chemical reactions on the surface of a molten metal at elevated temperatures and under reactive conditions. The surface of the molten metal is monitored simultaneously using synchrotron x-ray scattering, Raman spectroscopy, and optical microscopy, thereby providing complementary information about the atomic structure and chemical state of the surface. To enable in situ characterization on a molten substrate at high temperatures (e.g., ∼1370 K for copper), the optical and x-ray windows need to be protected from the evaporating LMCat, reaction products, and intense heat. This has been achieved by creating specific gas-flow patterns inside the reactor. The optimized design of the reactor has been achieved using multiphysics COMSOL simulations, which take into account the heat transfer, fluid dynamics, and transport of LMCat vapor inside the reactor. The setup has been successfully tested and is currently used to investigate the CVD growth of graphene on the surface of molten copper under pressures ranging from medium vacuum up to atmospheric pressure.

摘要

液态金属催化剂(LMCats)(例如熔融铜)可为二维材料(2DMs)(例如石墨烯)提供一种全新的大规模生产方法,其质量更高、速度更快,且能源和材料消耗更低。为实现如此卓越的技术,需要研究LMCats的物理化学性质以及二维材料在LMCats上的生长机制。在此,我们报告了一种化学气相沉积(CVD)反应器的开发情况,该反应器能够在高温和反应条件下研究熔融金属表面正在进行的化学反应。利用同步加速器X射线散射、拉曼光谱和光学显微镜同时监测熔融金属的表面,从而提供有关表面原子结构和化学状态的补充信息。为了在高温下(例如铜为~1370 K)对熔融衬底进行原位表征,需要保护光学窗口和X射线窗口免受蒸发的LMCat、反应产物和强热的影响。这是通过在反应器内部创建特定的气流模式来实现的。反应器的优化设计是通过多物理场COMSOL模拟实现的,该模拟考虑了反应器内部的热传递、流体动力学以及LMCat蒸汽的传输。该装置已成功测试,目前用于研究在中等真空至大气压范围内的压力下,石墨烯在熔融铜表面的CVD生长。

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