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可靠地剥离大面积高质量的石墨烯和其他二维材料的薄片。

Reliable Exfoliation of Large-Area High-Quality Flakes of Graphene and Other Two-Dimensional Materials.

机构信息

Center for Functional Nanomaterials, Brookhaven National Laboratory , Upton, New York 11973, United States.

Department of Mechanical & Materials Engineering, University of Nebraska-Lincoln , Lincoln, Nebraska 68588, United States.

出版信息

ACS Nano. 2015 Nov 24;9(11):10612-20. doi: 10.1021/acsnano.5b04258. Epub 2015 Sep 10.

Abstract

Mechanical exfoliation has been a key enabler of the exploration of the properties of two-dimensional materials, such as graphene, by providing routine access to high-quality material. The original exfoliation method, which remained largely unchanged during the past decade, provides relatively small flakes with moderate yield. Here, we report a modified approach for exfoliating thin monolayer and few-layer flakes from layered crystals. Our method introduces two process steps that enhance and homogenize the adhesion force between the outermost sheet in contact with a substrate: Prior to exfoliation, ambient adsorbates are effectively removed from the substrate by oxygen plasma cleaning, and an additional heat treatment maximizes the uniform contact area at the interface between the source crystal and the substrate. For graphene exfoliation, these simple process steps increased the yield and the area of the transferred flakes by more than 50 times compared to the established exfoliation methods. Raman and AFM characterization shows that the graphene flakes are of similar high quality as those obtained in previous reports. Graphene field-effect devices were fabricated and measured with back-gating and solution top-gating, yielding mobilities of ∼4000 and 12,000 cm(2)/(V s), respectively, and thus demonstrating excellent electrical properties. Experiments with other layered crystals, e.g., a bismuth strontium calcium copper oxide (BSCCO) superconductor, show enhancements in exfoliation yield and flake area similar to those for graphene, suggesting that our modified exfoliation method provides an effective way for producing large area, high-quality flakes of a wide range of 2D materials.

摘要

机械剥落法是探索二维材料(如石墨烯)性质的关键手段,它为获得高质量材料提供了常规途径。在过去的十年中,原始的剥落方法基本保持不变,只能得到中等产率的较小薄片。在此,我们报告了一种改进的从层状晶体中剥落薄的单层和少层薄片的方法。我们的方法引入了两个增强并均匀化与基底接触的最外层片之间的粘附力的工艺步骤:在剥落之前,通过氧等离子体清洁有效地从基底上去除环境吸附物,并且额外的热处理使源晶体与基底之间的界面处的均匀接触面积最大化。对于石墨烯的剥落,与传统的剥落方法相比,这些简单的工艺步骤使剥落得到的薄片的产率和面积增加了 50 多倍。拉曼和 AFM 表征表明,所得石墨烯薄片的质量与以前报道的那些类似。制备了石墨烯场效应器件并通过背栅和溶液顶栅进行了测量,得到的迁移率分别约为 4000 和 12000 cm2/(V s),从而证明了其优异的电性能。对其他层状晶体(例如铋锶钙铜氧化物(BSCCO)超导体)的实验表明,剥落产率和薄片面积的增强与石墨烯的增强相似,这表明我们改进的剥落方法为生产大面积、高质量的各种二维材料的薄片提供了一种有效的途径。

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