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电润湿介导的传输在纳米孔电极阵列中产生电化学晶体管作用。

Electrowetting-Mediated Transport to Produce Electrochemical Transistor Action in Nanopore Electrode Arrays.

机构信息

Department of Chemical and Biomolecular Engineering, University of Notre Dame, Notre Dame, IN, 46556, USA.

Department of Chemistry and Biochemistry, University of Notre Dame, Notre Dame, IN, 46556, USA.

出版信息

Small. 2020 May;16(18):e1907249. doi: 10.1002/smll.201907249. Epub 2020 Apr 9.

DOI:10.1002/smll.201907249
PMID:32270930
Abstract

Understanding water behavior in confined volumes is important in applications ranging from water purification to healthcare devices. Especially relevant are wetting and dewetting phenomena which can be switched by external stimuli, such as light and electric fields. Here, these behaviors are exploited for electrochemical processing by voltage-directed ion transport in nanochannels contained within nanopore arrays in which each nanopore presents three electrodes. The top and middle electrodes (TE and ME) are in direct contact with the nanopore volume, but the bottom electrode (BE) is buried beneath a 70 nm silicon nitride (SiN ) insulating layer. Electrochemical transistor operation is realized when small, defect-mediated channels are opened in the SiN . These defect channels exhibit voltage-driven wetting that mediates the mass transport of redox species to/from the BE. When BE is held at a potential maintaining the defect channels in the wetted state, setting the potential of ME at either positive or negative overpotential results in strong electrochemical rectification with rectification factors up to 440. By directing the voltage-induced electrowetting of defect channels, these three-electrode nanopore structures can achieve precise gating and ion/molecule separation, and, as such, may be useful for applications such as water purification and drug delivery.

摘要

理解受限体积中的水行为对于从水净化到医疗设备的各种应用都很重要。特别相关的是润湿性和去润湿性现象,它们可以通过外部刺激(如光和电场)来切换。在这里,这些行为通过纳米通道中的电压导向离子传输来用于电化学处理,这些纳米通道包含在纳米孔阵列中,其中每个纳米孔都有三个电极。顶部和中间电极(TE 和 ME)与纳米孔体积直接接触,但底部电极(BE)埋在 70nm 厚的氮化硅(SiN)绝缘层下。当在 SiN 中打开小的、缺陷介导的通道时,实现电化学晶体管操作。这些缺陷通道表现出电压驱动的润湿性,介导氧化还原物种在 BE 之间的质量传输。当 BE 保持在保持缺陷通道处于润湿状态的电位时,将 ME 的电位设置为正或负过电位,导致强电化学整流,整流因子高达 440。通过引导缺陷通道的电压诱导电润湿,这些三电极纳米孔结构可以实现精确的门控和离子/分子分离,因此可能对水净化和药物输送等应用有用。

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