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Asymmetric ion track nanopores for sensor technology. Reconstruction of pore profile from conductometric measurements

机译:用于传感器技术的不对称离子径迹纳米孔。通过电导率测量重建孔轮廓

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摘要

We reconstruct the profile of asymmetric ion track nanopores from an algorithm developed for conductometric measurements of symmetric nanopores. The validity of the reconstruction is supported by FESEM observations. Our analysis reveals that asymmetric pores fabricated by one-sided etching are funnel-like and not conical. The analysis provides the constriction diameter and the pore profile as a function of etching time. The reconstruction of the pore profile defines the starting conditions of asymmetric nanopores at breakthrough. The deviation from the conical shape is most pronounced at the pore tip. This critical zone dominates transport properties relevant to ion conductance, selectivity, current rectification, resistive pulse sensing and biosensors. The classical cone approximation used until now underestimates the tip diameter by a factor of two. As transport processes in nanopores depend in a highly nonlinear way on the constriction diameter the presented reconstruction must be taken into account when studying ionic and molecular transport processes in asymmetric pores.
机译:我们从为对称纳米孔的电导率测量开发的算法重建非对称离子径迹纳米孔的轮廓。 FESEM观测结果证明了重建的有效性。我们的分析表明,通过单面蚀刻制成的不对称孔呈漏斗状而不是圆锥形。分析提供收缩直径和孔轮廓作为蚀刻时间的函数。孔轮廓的重建定义了不对称纳米孔突破的起始条件。与圆锥形的偏差在孔尖最明显。这个关键区域主导着与离子电导率,选择性,电流整流,电阻脉冲传感和生物传感器有关的传输性能。迄今为止使用的经典圆锥近似法将尖端直径低估了两倍。由于纳米孔中的传输过程高度依赖于收缩直径,因此在研究非对称孔中的离子和分子传输过程时,必须考虑所提出的重构。

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