Qian Shizhi, Joo Sang W, Ai Ye, Cheney Marcos A, Hou Wensheng
Department of Aerospace Engineering, Old Dominion University, Norfolk, VA 23529-0247, USA.
J Colloid Interface Sci. 2009 Jan 15;329(2):376-83. doi: 10.1016/j.jcis.2008.10.012. Epub 2008 Nov 1.
The electrokinetic ionic-current rectification in a conical nanopore with linearly varying surface-charge distributions is studied theoretically by using a continuum model composed of a coupled system of the Nernst-Planck equations for the ionic-concentration field and the Poisson equation for the electric potential in the electrolyte solution. The numerical analysis includes the electrochemistry inside reservoirs connected to the nanopore, neglected in previous studies, and more precise accounts of the ionic current are provided. The surface-charge distribution, especially near the tip of the nanopore, significantly affects the ionic enrichment and depletion, which, in turn, influence the resulting ionic current and the rectification. It is shown that non-uniform surface-charge distribution can reverse the direction, or sense, of the rectification. Further insights into the ionic-current rectification are provided by discussing the intriguing details of the electric potential and ionic-concentration fields, leading to the rectification. Rationale for future studies on ionic-current rectification, associated with other non-uniform surface-charge distributions and electroosmotic convection for example, is discussed.
利用一个连续介质模型对具有线性变化表面电荷分布的锥形纳米孔中的电动离子电流整流进行了理论研究,该模型由用于离子浓度场的能斯特 - 普朗克方程和用于电解质溶液中电势的泊松方程的耦合系统组成。数值分析包括连接到纳米孔的储液器内部的电化学,这在以前的研究中被忽略了,并且提供了对离子电流更精确的描述。表面电荷分布,特别是在纳米孔尖端附近,显著影响离子的富集和耗尽,进而影响产生的离子电流和整流。结果表明,非均匀表面电荷分布可以反转整流的方向或极性。通过讨论导致整流的电势和离子浓度场的有趣细节,对离子电流整流有了进一步的认识。讨论了未来与其他非均匀表面电荷分布和电渗对流相关的离子电流整流研究的基本原理。