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用于分子电子器件的自组装纳米间隙的并行制造

Parallel Fabrication of Self-Assembled Nanogaps for Molecular Electronic Devices.

作者信息

Eklöf-Österberg Johnas, Gschneidtner Tina, Tebikachew Behabitu, Lara-Avila Samuel, Moth-Poulsen Kasper

机构信息

Department of Chemistry and Chemical Engineering, Chalmers University of Technology, Gothenburg, 412 96, Sweden.

Department of Microtechnology and Nanoscience, Chalmers University of Technology, Gothenburg, 412 96, Sweden.

出版信息

Small. 2018 Dec;14(50):e1803471. doi: 10.1002/smll.201803471. Epub 2018 Oct 25.

Abstract

Single molecule electronics might be a way to add additional function to nanoscale devices and continue miniaturization beyond current state of the art. Here, a combined top-down and bottom-up strategy is employed to assemble single molecules onto prefabricated electrodes. Protodevices, which are self-assembled nanogaps composed by two gold nanoparticles linked by a single or a few molecules, are guided onto top-down prefabricated nanosized nickel electrodes with sandwiched palladium layers. It is shown that an optimized geometry of multilayered metallic (top-down) electrodes facilitates the assembly of (bottom-up) nanostructures by surface charge interactions. Moreover, such assembly process results in an electrode-nanoparticle interface free from linking molecules that enable electrical measurements to probe electron transport properties of the nanoparticle-molecule-nanoparticle protodevices.

摘要

单分子电子学可能是一种为纳米级器件增添附加功能并超越当前技术水平继续实现小型化的方法。在此,采用了一种自上而下与自下而上相结合的策略,将单分子组装到预制电极上。原器件是由单个或几个分子连接的两个金纳米颗粒组成的自组装纳米间隙,被引导到带有夹层层的自上而下预制的纳米尺寸镍电极上。结果表明,多层金属(自上而下)电极的优化几何结构通过表面电荷相互作用促进了(自下而上)纳米结构的组装。此外,这种组装过程产生了一个没有连接分子的电极 - 纳米颗粒界面,使得电学测量能够探测纳米颗粒 - 分子 - 纳米颗粒原器件的电子传输特性。

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