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Conductance-Based Determination of Solid-State Nanopore Size and Shape: An Exploration of Performance Limits

机译:基于电导率的固态纳米孔尺寸和形状的测定:性能限制的探索

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摘要

Knowledge of nanopore size and shape is critical for many implementations of these single-molecule sensing elements. Geometry determination by fitting the electrolyte-concentration-dependence of the conductance of surface-charged, solid-state nanopores has been proposed to replace demanding electron microscope-based methods. The functional form of the conductance poses challenges for this method by restricting the number of free parameters used to characterize the nanopore. We calculated the electrolyte-dependent conductance of nanopores with an exponential-cylindrical radial profile using three free geometric parameters; this profile, itself, could not be uniquely geometry-optimized by the conductance. Several different structurally simplified models, however, generated quantitative agreement with the conductance, but with errors exceeding 40% for estimates of key geometrical parameters. A tractable conical-cylindrical model afforded a good characterization of the nanopore size and shape, with errors of less than 1% for the limiting radius. Understanding these performance limits provides a basis for using and extending analytical nanopore conductance models.
机译:纳米孔大小和形状的知识对于这些单分子传感元件的许多实现至关重要。已经提出了通过拟合表面带电的固态纳米孔的电导率的电解质浓度依赖性来确定几何形状的方法,以取代基于电子显微镜的苛刻方法。电导的功能形式通过限制用于表征纳米孔的自由参数的数量,对该方法提出了挑战。我们使用三个自由的几何参数计算了具有指数圆柱径向轮廓的纳米孔的电解质依赖性电导;该轮廓本身无法通过电导唯一地进行几何优化。但是,几种不同的结构简化模型产生了与电导的定量一致性,但是对于关键几何参数的估计,其误差超过40%。易处理的圆锥圆柱模型可以很好地表征纳米孔的大小和形状,其极限半径误差小于1%。了解这些性能极限为使用和扩展分析纳米孔电导模型提供了基础。

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