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利用原子力显微镜操控金纳米线构建电路。

AFM Manipulation of Gold Nanowires To Build Electrical Circuits.

作者信息

Moreno-Moreno Miriam, Ares Pablo, Moreno Consuelo, Zamora Félix, Gómez-Navarro Cristina, Gómez-Herrero Julio

机构信息

Departamento de Física de la Materia Condensada , Universidad Autónoma de Madrid , Madrid E-28049 , Spain.

Departamento de Química Inorgánica and Institute for Advanced Research in Chemical Sciences (IAdChem) , Universidad Autónoma de Madrid , Madrid E-28049 , Spain.

出版信息

Nano Lett. 2019 Aug 14;19(8):5459-5468. doi: 10.1021/acs.nanolett.9b01972. Epub 2019 Aug 6.

DOI:10.1021/acs.nanolett.9b01972
PMID:31369278
Abstract

We introduce scanning-probe-assisted nanowire circuitry (SPANC) as a new method to fabricate electrodes for the characterization of electrical transport properties at the nanoscale. SPANC uses an atomic force microscope (AFM) to manipulate nanowires to create complex and highly conductive nanostructures (paths) that work as nanoelectrodes, allowing connectivity and electrical characterization of other nano-objects. The paths are formed by the spontaneous cold welding of gold nanowires upon mechanical contact, leading to an excellent contact resistance of ∼9 Ω/junction. SPANC is an easy to use and cost-effective technique that fabricates clean nanodevices. Hence, this new method can complement and/or be an alternative to other well-established methods to fabricate nanocircuits such as electron beam lithography (EBL). The circuits made by SPANC are easily reconfigurable, and their fabrication does not require the use of polymers and chemicals. In this work, we present a few examples that illustrate the capabilities of this method, allowing robust device fabrication and electrical characterization of several nano-objects with sizes down to ∼10 nm, well below the current smallest size able to be contacted in a device using the standard available technology (∼30 nm). Importantly, we also provide the first experimental determination of the sheet resistance of thin antimonene flakes.

摘要

我们引入扫描探针辅助纳米线电路(SPANC)作为一种制造电极的新方法,用于表征纳米尺度下的电输运特性。SPANC使用原子力显微镜(AFM)来操纵纳米线,以创建作为纳米电极的复杂且高导电的纳米结构(路径),从而实现与其他纳米物体的连接和电学表征。这些路径是通过金纳米线在机械接触时的自发冷焊形成的,导致每个结的接触电阻约为9Ω 。SPANC是一种易于使用且具有成本效益的技术,可制造出清洁的纳米器件。因此,这种新方法可以补充和/或替代其他成熟的纳米电路制造方法,如电子束光刻(EBL)。由SPANC制成的电路易于重新配置,并且其制造不需要使用聚合物和化学品。在这项工作中,我们展示了一些示例来说明该方法的能力,能够制造出坚固的器件,并对尺寸小至约10nm的几种纳米物体进行电学表征,这远低于使用现有标准技术在器件中能够接触的当前最小尺寸(约30nm)。重要的是,我们还首次对薄锑烯薄片的薄层电阻进行了实验测定。

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