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Conversion of Self-Assembled Monolayers into Nanocrystalline Graphene: Structure and Electric Transport

机译:自组装单层到纳米晶石墨烯的转换:结构和电传输。

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摘要

Graphene-based materials have been suggested for applications ranging from nanoelectronics to nanobiotechnology. However, the realization of graphene-based technologies will require large quantities of free-standing two-dimensional (2D) carbon materials with tunable physical and chemical properties. Bottom-up approaches via molecular self-assembly have great potential to fulfill this demand. Here, we report on the fabrication and characterization of graphene made by electron-radiation induced cross-linking of aromatic self-assembled monolayers (SAMs) and their subsequent annealing. In this process, the SAM is converted into a nanocrystalline graphene sheet with well-defined thickness and arbitrary dimensions. Electric transport data demonstrate that this transformation is accompanied by an insulator to metal transition that can be utilized to control electrical properties such as conductivity, electron mobility, and ambipolar electric field effect of the fabricated graphene sheets. The suggested route opens broad prospects toward the engineering of free-standing 2D carbon materials with tunable properties on various solid substrates and on holey substrates as suspended membranes.
机译:已经提出了基于石墨烯的材料的应用范围从纳米电子学到纳米生物技术。但是,基于石墨烯的技术的实现将需要大量具有可调节的物理和化学特性的独立式二维(2D)碳材料。通过分子自组装的自下而上的方法具有满足这一需求的巨大潜力。在这里,我们报告的石墨烯的制备和表征是由电子辐射诱导的芳香族自组装单分子层(SAMs)的交联及其随后的退火过程。在此过程中,SAM被转换为具有明确定义的厚度和任意尺寸的纳米晶石墨烯片。电传输数据表明,这种转变伴随着绝缘体到金属的转变,可用于控制所制造的石墨烯片的电性能,例如电导率,电子迁移率和双极性电场效应。所建议的方法为在各种固体基质上以及在多孔基质上作为悬浮膜的具有可调性的独立2D碳材料的工程开发开辟了广阔的前景。

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