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二维单硫属化物的分散行为。

Dispersion behaviour of two dimensional monochalcogenides.

机构信息

Institute of Electronic Structure and Laser, Foundation for Research and Technology-Hellas, Heraklion, 700 13 Crete, Greece.

Institute of Electronic Structure and Laser, Foundation for Research and Technology-Hellas, Heraklion, 700 13 Crete, Greece; Physics Department, University of Crete, Heraklion, 710 03 Crete, Greece.

出版信息

J Colloid Interface Sci. 2021 Jul 15;594:334-341. doi: 10.1016/j.jcis.2021.02.081. Epub 2021 Mar 9.

Abstract

Solution processable two-dimensional (2D) materials have provided an ideal platform for both fundamental studies and wearable electronic applications. Apart from graphene and 2D dichalcogenides, IV-VI metal monochalcogenides (MMCs) has emerged recently as a promising candidate for next generation electronic applications. However, the dispersion behavior, which is crucial for the quality, solubility and stability of MMCs, has been quite unexplored. Here, the exfoliation and the dispersion behavior of Germanium (II) monosulfide (GeS) and Tin (II) monosulfide (SnS) nanosheets has been investigated in a wide range of organic solvents. Nine different organic solvents were examined and analyzed, considering the solvent polarity, surface tension, and Hansen solubility parameters. A significant yield of isolated GeS and SnS flakes, namely ~16.4 and ~23.08 μg/ml in 2-propanol and N-Methyl-2-pyrrolidone respectively were attained. The isolated flakes are few-layers nanosheets with lateral sizes over a few hundreds of nanometers. The MMC colloids exhibit long-term stability, suggesting the MMCs applicability for scalable solution processable printed electronic device applications.

摘要

溶液加工二维(2D)材料为基础研究和可穿戴电子应用提供了理想的平台。除了石墨烯和二维硫属化物外,IV-VI 族金属单硫属化物(MMC)最近也成为下一代电子应用的有前途的候选材料。然而,对于 MMC 的质量、溶解度和稳定性至关重要的分散行为,仍未得到充分探索。在这里,研究了锗(II)单硫化物(GeS)和锡(II)单硫化物(SnS)纳米片在广泛的有机溶剂中的剥离和分散行为。考虑到溶剂极性、表面张力和 Hansen 溶解度参数,研究了九种不同的有机溶剂。在异丙醇和 N-甲基-2-吡咯烷酮中,分别获得了高达16.4 和23.08μg/ml 的孤立 GeS 和 SnS 薄片的高产量。这些孤立的薄片是具有数百纳米以上的横向尺寸的少层纳米片。MMC 胶体表现出长期稳定性,这表明 MMC 适用于可扩展的溶液加工印刷电子器件应用。

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