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Intrinsic Stepwise Translocation of Stretched ssDNA in Graphene Nanopores

机译:ssDNA在石墨烯纳米孔中的内在逐步移位。

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摘要

We investigate by means of molecular dynamics simulations stretch-induced stepwise translocation of single-stranded DNA (ssDNA) through graphene nanopores. The intrinsic stepwise DNA motion, found to be largely independent of size and shape of the graphene nanopore, is brought about through alternating conformational changes between spontaneous adhesion of DNA bases to the rim of the graphene nanopore and unbinding due to mechanical force or electric field. The adhesion reduces the DNA bases' vertical conformational fluctuations, facilitating base detection and recognition. A graphene membrane shaped as a quantum point contact permits, by means of transverse electronic conductance measurement, detection of the stepwise translocation of the DNA as predicted through quantum mechanical Green's function-based transport calculations. The measurement scheme described opens a route to enhance the signal-to-noise ratio not only by slowing down DNA translocation to provide sufficient time for base recognition but also by stabilizing single DNA bases and, thereby, reducing thermal noise.
机译:我们通过分子动力学模拟的方式研究通过石墨烯纳米孔的拉伸诱导逐步转移的单链DNA(ssDNA)。固有的逐步DNA运动被发现很大程度上与石墨烯纳米孔的大小和形状无关,这是通过DNA碱基自发粘附到石墨烯纳米孔的边缘与由于机械力或电场而解除结合之间的交替构象变化而实现的。这种附着力减少了DNA碱基的垂直构象波动,有助于碱基检测和识别。通过横向电子电导测量,形状为量子点接触的石墨烯膜可以检测DNA的逐步转运,这是通过基于量子力学格林函数的转运计算所预测的。所描述的测量方案不仅通过减慢DNA易位速度以提供足够的时间进行碱基识别,而且通过稳定单个DNA碱基从而降低热噪声,开辟了一条提高信噪比的途径。

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