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从泡沫到薄膜:一种实现空间受限化学气相沉积生长二硫化钼的简便方法。

Foams-To-Films: A Facile Approach Towards Space-Confined CVD Growth of MoS.

作者信息

Currie Taylor M, Davalos Barrios Jesse, Lan Nguyen Moc, Tetard Laurene, Jurca Titel

机构信息

Department of Chemistry, University of Central Florida, Orlando, Florida, 32816, USA.

Renewable Energy and Chemical Transformations (R.E.A.C.T.) Cluster, University of Central Florida, Orlando, Florida, 32816, USA.

出版信息

Chemphyschem. 2025 Jan 2;26(1):e202400854. doi: 10.1002/cphc.202400854. Epub 2024 Nov 21.

Abstract

2D materials have rapidly become the building blocks for the next generation of semiconducting materials and devices, with chemical vapor deposition (CVD) emerging as a prefered method for their synthesis. However, the predictable and reproducible growth of high quality, large 2D monolayers remains challenging. An important facet is controlling the local environment at the surface of the substrate - here, space-confinement techniques have emerged as promising candidates. We demonstrate that space-confined CVD growth using microstructured MoO grown on Ni foam is an appealing approach for rapid growth of high quality MoS monolayers; a very important subset of 2D materials. This method eschews the use of powders which can be more difficult to control. By incorporation of a porous barrier in the Ni foam support, the rate of delivery of both the Mo and S source to the substrate is dampened, leading to coverage of large, high quality, mono-to-few layer triangular domains as confirmed by Raman and photoluminescence (PL) spectroscopies together with atomic force microscopy (AFM) height measurements.

摘要

二维材料已迅速成为下一代半导体材料和器件的构建单元,化学气相沉积(CVD)已成为其合成的首选方法。然而,高质量、大面积二维单层的可预测和可重复生长仍然具有挑战性。一个重要方面是控制衬底表面的局部环境——在此,空间限制技术已成为有前景的候选方法。我们证明,在泡沫镍上生长微结构MoO进行空间限制CVD生长是快速生长高质量MoS单层(二维材料的一个非常重要的子集)的一种有吸引力的方法。该方法避免使用更难控制的粉末。通过在泡沫镍载体中加入多孔屏障,Mo和S源向衬底的输送速率受到抑制,导致形成大面积、高质量的单层至少数层三角形区域,拉曼光谱、光致发光(PL)光谱以及原子力显微镜(AFM)高度测量结果证实了这一点。

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