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通过气-液-固法实现单层二硫化钼的晶圆级和确定性图案化生长。

Wafer-scale and deterministic patterned growth of monolayer MoSvia vapor-liquid-solid method.

作者信息

Li Shisheng, Lin Yung-Chang, Liu Xu-Ying, Hu Zehua, Wu Jing, Nakajima Hideaki, Liu Song, Okazaki Toshiya, Chen Wei, Minari Takeo, Sakuma Yoshiki, Tsukagoshi Kazuhito, Suenaga Kazu, Taniguchi Takaaki, Osada Minoru

机构信息

International Center for Young Scientists (ICYS), National Institute for Materials Science (NIMS), Tsukuba 305-0044, Japan.

出版信息

Nanoscale. 2019 Aug 29;11(34):16122-16129. doi: 10.1039/c9nr04612g.

Abstract

Vapor transportation is the core process in growing transition-metal dichalcogenides (TMDCs) by chemical vapor deposition (CVD). One inevitable problem is the spatial inhomogeneity of vapors. The non-stoichiometric supply of transition-metal precursors and chalcogens leads to poor control in the products' location, morphology, crystallinity, uniformity and batch to batch reproducibility. The vapor-liquid-solid (VLS) growth method often involves molten precursors (e.g., non-volatile Na2MoO4) at growth temperatures higher than their melting points. The liquid Na2MoO4 can precipitate out solid MoS2 monolayers when saturated with sulfur vapor. Taking advantage of the VLS growth, we attained three kinds of important achievements: (i) a 4-inch-wafer-scale uniform growth of MoS2 flakes on SiO2/Si substrates, (ii) a 2-inch-wafer-scale growth of continuous MoS2 film with the grain size exceeding 100 μm on sapphire substrates, and (iii) a patterned (site-controlled) growth of MoS2 flakes and films. We clarified that the VLS growth thus paves a new way for the high-efficient and scalable synthesis of two-dimensional TMDC monolayers.

摘要

气相输运是通过化学气相沉积(CVD)生长过渡金属二硫属化物(TMDCs)的核心过程。一个不可避免的问题是气相的空间不均匀性。过渡金属前驱体和硫属元素的非化学计量供应导致对产物的位置、形态、结晶度、均匀性以及批次间重复性的控制不佳。气-液-固(VLS)生长方法通常涉及在高于其熔点的生长温度下的熔融前驱体(例如,非挥发性的Na2MoO4)。当液态Na2MoO4被硫蒸汽饱和时,它可以析出固态MoS2单层。利用VLS生长,我们取得了三项重要成果:(i)在SiO2/Si衬底上实现了4英寸晶圆规模的MoS2薄片均匀生长,(ii)在蓝宝石衬底上实现了2英寸晶圆规模的连续MoS2薄膜生长,其晶粒尺寸超过100μm,以及(iii)MoS2薄片和薄膜的图案化(位点控制)生长。我们阐明,VLS生长因此为二维TMDC单层的高效和可扩展合成开辟了一条新途径。

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