Yao Yao, Wen Chenyu, Pham Ngan H, Zhang Shi-Li
Division of Solid-State Electronics, Department of Electrical Engineering, Uppsala University, SE-751 03 Uppsala, Sweden.
Langmuir. 2020 Aug 4;36(30):8874-8882. doi: 10.1021/acs.langmuir.0c01189. Epub 2020 Jul 20.
Solid-state nanopores constitute a versatile platform for study of ion transport in nanoconfinement. The electrical double layer (EDL) plays a vital role in such nanoconfinements, but effects of induced surface charge on the EDL in the presence of an external transmembrane electric field are yet to be characterized. Here, the formation of induced charge on the nanopore sidewall surface and its effects, via modulation of the EDL and electroosmotic flow, on the ionic current are elucidated using a novel experimental setup with solid-state truncated-pyramidal nanopores. This study consists of three complementary approaches, .., an analytical model for induced surface charge, numerical simulation of induced surface charge, electroosmotic flow, and ionic current, and experimental validation with respect to the ionic current. The induced surface charge is generated by polarization in the dielectric membrane as a response to the applied electric field. This charge generation results in a nonuniform density of surface charge along the nanopore sidewall. It further causes ions in the electrolyte to redistribute, leading to a massive accumulation of single-polarity ions in the EDL and their counterions near the smaller opening of the nanopore. It also alters electrohydrodynamic properties in the nanopore, giving rise to the formation of electroosmotic vortexes in the vicinity of the smaller opening of the nanopore. Finally, the pattern of the electroosmotic flow can significantly influence the transport properties of the nanopore.
固态纳米孔构成了一个用于研究纳米限域中离子传输的通用平台。在这种纳米限域中,双电层(EDL)起着至关重要的作用,但在存在外部跨膜电场的情况下,诱导表面电荷对双电层的影响尚未得到表征。在此,使用一种具有固态截顶金字塔形纳米孔的新型实验装置,阐明了纳米孔侧壁表面上诱导电荷的形成及其通过调制双电层和电渗流对离子电流的影响。本研究包括三种互补方法,……,诱导表面电荷的分析模型、诱导表面电荷、电渗流和离子电流的数值模拟以及关于离子电流的实验验证。诱导表面电荷是由电介质膜中的极化产生的,作为对施加电场的响应。这种电荷产生导致沿纳米孔侧壁的表面电荷密度不均匀。它进一步导致电解质中的离子重新分布,导致双电层中单极性离子及其反离子在纳米孔较小开口附近大量积累。它还改变了纳米孔中的电流体动力学性质,在纳米孔较小开口附近形成电渗涡旋。最后,电渗流模式可显著影响纳米孔的传输性质。