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Modeling the conductance and DNA blockade of solid-state nanopores

机译:模拟固态纳米孔的电导和DNA阻断

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We present measurements and theoretical modeling of the ionic conductance G of solid-state nanopores with 5-100nm diameters, with and without DNA inserted into the pore. First, we show that it is essential to include access resistance to describe the conductance, in particular for larger pore diameters. We then present an exact solution for G of an hourglass-shaped pore, which agrees very well with our measurements without any adjustable parameters, and which is an improvement over the cylindrical approximation. Subsequently we discuss the conductance blockade ΔG due to the insertion of a DNA molecule into the pore, which we study experimentally as a function of pore diameter. We find that ΔG decreases with pore diameter, contrary to the predictions of earlier models that forecasted a constant ΔG. We compare three models for ΔG, all of which provide good agreement with our experimental data
机译:我们介绍了直径为5-100nm的固态纳米孔的离子电导率G的测量值和理论模型,有和没有DNA插入孔中。首先,我们证明必须包括访问电阻来描述电导,特别是对于较大的孔径。然后,我们为沙漏形孔的G提供了精确的解决方案,它与我们的测量结果非常吻合,没有任何可调整的参数,并且是对圆柱近似的改进。随后,我们讨论了由于将DNA分子插入孔而导致的电导阻滞ΔG,我们将其作为孔径的函数进行实验研究。我们发现,ΔG随着孔径的增加而减小,这与预测常数ΔG的早期模型的预测相反。我们比较了ΔG的三个模型,所有这些模型都与我们的实验数据相吻合

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