Alternating electric field-induced ion current rectification and electroosmotic pump in ultranarrow charged carbon nanocones

电场 整改 离子流 离子 化学 锥面 电流(流体) 电渗 化学物理 材料科学 分析化学(期刊) 光电子学 分子物理学 电压 电泳 电气工程 复合材料 热力学 物理 色谱法 工程类 有机化学 量子力学
作者
Wen Li,Wensen Wang,Quangang Hou,Youguo Yan,Caili Dai,Jun Zhang
出处
期刊:Physical Chemistry Chemical Physics [Royal Society of Chemistry]
卷期号:20 (44): 27910-27916 被引量:11
标识
DOI:10.1039/c8cp05285a
摘要

Pumping fluid in ultranarrow (sub-2 nm) synthetic channels, analogous to protein channels, has widespread applications in nanofluidic devices, molecular separation, and related fields. In this work, molecular dynamics simulations were performed to study a symmetrical sinusoidal electric field-induced electroosmotic pump in ultranarrow charged carbon nanocone (CNC) channels. The results show that the CNC channels could rectify the ion current because of the different ion flow rates in the positive and negative half circles of the sinusoidal electric field. Electroosmotic flow (EOF) rectification yielded by the ion current rectification is also revealed, and net water flow from the base to the tip of the CNC channels is observed. The simulations also show that the preferential ion current conduction direction in the ultranarrow CNC channels (from base to tip) is opposite to that in conical nanochannels with tip diameters larger than 5 nm (from tip to base). However, the preferential EOF direction is the same as that of large conical nanochannels (from base to tip). We also investigated the influences of ion concentration and the amplitudes and periods of the sinusoidal electric field on the EOF pump. The results show that high ion concentration, large amplitudes, and long periods are desired for high EOF pumping efficiency. Finally, through comparison with a constant electric field and a pressure-induced water pump, we prove that the EOF pump under an alternating electric field has a higher pump efficiency. The approach outlined in this work provides a general scheme for pumping fluid in ultranarrow charged conical nanochannels.
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