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纳米吸管中离子通量的可视化:第二类电渗流的检测与分析。

Visualization of Ion Fluxes in Nanopipettes: Detection and Analysis of Electro-osmosis of the Second Kind.

机构信息

Department of Chemistry, University of Warwick, Gibbet Hill, Coventry CV4 7AL, United Kingdom.

出版信息

Anal Chem. 2021 Dec 14;93(49):16302-16307. doi: 10.1021/acs.analchem.1c02371. Epub 2021 Nov 30.

Abstract

Nanopipettes are finding increasing use as nano "test tubes", with reactions triggered through application of an electrochemical potential between electrodes in the nanopipette and a bathing solution (bath). Key to this application is an understanding of how the applied potential induces mixing of the reagents from the nanopipette and the bath. Here, we demonstrate a laser scanning confocal microscope (LSCM) approach to tracking the ingress of dye into a nanopipette (20-50 nm diameter end opening). We examine the case of dianionic fluorescein under alkaline conditions (pH 11) and large applied tip potentials (±10 V), with respect to the bath, and surprisingly find that dye ingress from the bath into the nanopipette is not observed under either sign of potential. Finite element method (FEM) simulations indicate this is due to the dominance of electro-osmosis in mass transport, with electro-osmotic flow in the conventional direction at +10 V and electro-osmosis of the second kind acting in the same direction at -10 V, caused by the formation of significant space charge in the center of the orifice. The results highlight the significant deviation in mass transport behavior that emerges at the nanoscale and the utility of the combined LSCM and FEM approach in deepening understanding, which in turn should promote new applications of nanopipettes.

摘要

纳米移液器作为纳米“试管”的应用越来越广泛,通过在纳米移液器和浴液(bath)中的电极之间施加电化学电势来触发反应。这种应用的关键是要了解施加的电势如何诱导从纳米移液器和浴液中混合试剂。在这里,我们展示了一种激光扫描共焦显微镜(LSCM)方法来跟踪染料进入纳米移液器(20-50nm 直径的尖端开口)的情况。我们研究了在碱性条件(pH11)和大施加尖端电势(±10V)下,相对于浴液,二价荧光素的情况,令人惊讶的是,我们发现无论是哪种电势,都没有观察到来自浴液的染料进入纳米移液器。有限元方法(FEM)模拟表明,这是由于电渗流在质量传输中占主导地位,在+10V 时,电渗流沿常规方向流动,在-10V 时,由于在孔口中心形成了显著的空间电荷,第二种类型的电渗流也朝相同方向流动。结果突出了在纳米尺度上出现的质量传输行为的显著偏差,以及 LSCM 和 FEM 方法的结合在加深理解方面的实用性,这反过来又应该促进纳米移液器的新应用。

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