Department of Chemical and Biomolecular Engineering, University of Notre Dame, Notre Dame, Indiana 46556, USA.
J Chem Phys. 2013 Jan 28;138(4):044706. doi: 10.1063/1.4776216.
We show both theoretically and experimentally that the ion-selectivity of a conic nanopore, as defined by a normalized density of the surface charge, significantly affects ion current rectification across the pore. For weakly selective negatively charged pores, intra-pore ion transport controls the current and internal ion enrichment/depletion at positive/reverse biased voltage (current enters/leaves through the tip, respectively), which is responsible for current rectification. For strongly selective negatively charged pores under positive bias, the current can be reduced by external field focusing and concentration depletion at the tip at low ionic strengths and high voltages, respectively. These external phenomena produce a rectification inversion for highly selective pores at high (low) voltage (ionic strength). With an asymptotic analysis of the intra-pore and external ion transport, we derive simple scaling laws to quantitatively capture empirical and numerical data for ion current rectification and rectification inversion of conic nanopores.
我们从理论和实验两方面表明,锥形纳米孔的离子选择性(由表面电荷的归一化密度定义)显著影响离子电流在纳米孔中的整流。对于弱选择性的带负电荷的纳米孔,纳米孔内的离子输运控制电流,并且在正/反向偏压下在纳米孔内进行离子富集/耗尽(电流分别通过尖端进入/离开),这是电流整流的原因。对于带负电荷的强选择性纳米孔,在低离子强度和高电压下,外部电场聚焦和尖端处的浓度耗尽可以分别降低电流。这些外部现象在高(低)电压(离子强度)下会导致高选择性纳米孔的整流反转。通过对纳米孔内和外部离子输运的渐近分析,我们得出了简单的标度定律,可以定量捕捉锥形纳米孔离子电流整流和整流反转的经验和数值数据。