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基于纳腔的石墨烯涂覆原子力显微镜探针,具有高空间分辨率、导电性和耐用性。

Nanogap based graphene coated AFM tips with high spatial resolution, conductivity and durability.

机构信息

State Key Laboratory for Turbulence and Complex System, Department of Mechanics and Aerospace Engineering, CAPT, College of Engineering, Peking University, Beijing 100871, China.

出版信息

Nanoscale. 2013 Nov 21;5(22):10816-23. doi: 10.1039/c3nr03720g. Epub 2013 Sep 26.

Abstract

After one decade of analyzing the intrinsic properties of graphene, interest into the development of graphene-based devices and micro electromechanical systems is increasing. Here, we fabricate graphene-coated atomic force microscope tips by growing the graphene on copper foil and transferring it onto the apex of a commercially available AFM tip. The resulting tip exhibits surprising enhanced resolution in nanoscale electrical measurements. By means of topographic AFM maps and statistical analyses we determine that this superior performance may be related to the presence of a nanogap between the graphene and the tip apex, which reduces the tip radius and tip-sample contact area. In addition, the graphene-coated tips show a low tip-sample interaction, high conductivity and long life times. The novel fabrication-friendly tip could improve the quality and reliability of AFM experiments, while reducing the cost of AFM-based research.

摘要

经过十年对石墨烯内在特性的分析,人们对基于石墨烯的器件和微机电系统的开发越来越感兴趣。在这里,我们通过在铜箔上生长石墨烯并将其转移到商用原子力显微镜(AFM)尖端上来制造涂覆石墨烯的 AFM 尖端。所得尖端在纳米级电测量中表现出惊人的增强分辨率。通过形貌 AFM 图谱和统计分析,我们确定这种卓越的性能可能与石墨烯和尖端之间存在纳米间隙有关,这减小了尖端半径和尖端-样品接触面积。此外,涂覆石墨烯的尖端表现出低的尖端-样品相互作用、高导电性和长寿命。这种新颖的易于制造的尖端可以提高 AFM 实验的质量和可靠性,同时降低基于 AFM 的研究成本。

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