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在具有纳米孔的石墨烯纳米带中,利用面内电流信号探测 DNA 易位。

Probing DNA Translocations with Inplane Current Signals in a Graphene Nanoribbon with a Nanopore.

机构信息

Kavli Institute of Nanoscience Delft, Delft University of Technology , Van der Maasweg 9 , 2629 HZ Delft , The Netherlands.

出版信息

ACS Nano. 2018 Mar 27;12(3):2623-2633. doi: 10.1021/acsnano.7b08635. Epub 2018 Feb 27.

Abstract

Many theoretical studies predict that DNA sequencing should be feasible by monitoring the transverse current through a graphene nanoribbon while a DNA molecule translocates through a nanopore in that ribbon. Such a readout would benefit from the special transport properties of graphene, provide ultimate spatial resolution because of the single-atom layer thickness of graphene, and facilitate high-bandwidth measurements. Previous experimental attempts to measure such transverse inplane signals were however dominated by a trivial capacitive response. Here, we explore the feasibility of the approach using a custom-made differential current amplifier that discriminates between the capacitive current signal and the resistive response in the graphene. We fabricate well-defined short and narrow (30 nm × 30 nm) nanoribbons with a 5 nm nanopore in graphene with a high-temperature scanning transmission electron microscope to retain the crystallinity and sensitivity of the graphene. We show that, indeed, resistive modulations can be observed in the graphene current due to DNA translocation through the nanopore, thus demonstrating that DNA sensing with inplane currents in graphene nanostructures is possible. The approach is however exceedingly challenging due to low yields in device fabrication connected to the complex multistep device layout.

摘要

许多理论研究预测,通过监测 DNA 分子在石墨烯纳米带中的纳米孔中迁移时穿过石墨烯纳米带的横向电流,应该可以实现 DNA 测序。这种读出将受益于石墨烯的特殊传输特性,由于石墨烯的单层原子厚度,提供了最终的空间分辨率,并促进了高带宽测量。然而,以前通过测量这种横向平面信号的实验尝试主要受到简单的电容响应的支配。在这里,我们使用定制的差分电流放大器来探索这种方法的可行性,该放大器可以区分电容电流信号和石墨烯中的电阻响应。我们使用高温扫描透射电子显微镜在石墨烯中制造了具有 5nm 纳米孔的定义明确的短而窄的(30nm×30nm)纳米带,以保持石墨烯的结晶度和灵敏度。我们表明,由于 DNA 通过纳米孔的迁移,确实可以观察到石墨烯电流中的电阻调制,从而证明了在石墨烯纳米结构中通过平面电流进行 DNA 传感是可能的。然而,由于与复杂的多步器件布局相关的器件制造产量低,该方法极具挑战性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9b67/5876620/3b15fef46266/nn-2017-08635w_0001.jpg

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