Literature DB >> 30251536

Nanogap-Based Electrochemical Measurements at Double-Carbon-Fiber Ultramicroelectrodes.

Pavithra Pathirathna1, Ryan J Balla1, Shigeru Amemiya1.   

Abstract

Electrochemical measurements with unprecedentedly high sensitivity, selectivity, and kinetic resolution have been enabled by a pair of electrodes separated by a nanometer-wide gap. The fabrication of nanogap electrodes, however, requires extensive nanolithography or nanoscale electrode positioning, thereby preventing the full exploration of this powerful method in electrode design and application. Herein, we report the simple fabrication of double-carbon-fiber ultramicroelectrodes (UMEs) with nanometer-wide gaps not only to facilitate nanogap-based electrochemical measurements but also to gain high time resolution, signal-to-background ratio, and kinetic selectivity for dopamine against ascorbic acid. Specifically, ∼7 μm-diameter carbon fibers are inserted into a double-bore glass capillary, heat-pulled, and milled by focused ion-beam technology to yield ∼50 μm-long double-cylinder UMEs. The redox cycling of the Ru(NH3)63+/2+ couple across a nanogap between voltammetric generator and amperometric collector electrodes reaches quasi-steady states at fast scan rates of 100 V/s as demonstrated experimentally and even 1000 V/s as predicted theoretically. The transient background of the amperometric collector response is suppressed ∼100 times in comparison with that of the voltammetric generator response. Nanogap voltammograms based on the collector response against the cycled generator potential are quantitatively analyzed without background subtraction to reproducibly yield nanogap widths of ∼0.18 μm and a standard electron-transfer rate constant of 0.9 cm/s. Moreover, nanogap-mediated redox cycling can be initiated by dopamine oxidation at the generator electrode to largely improve the dopamine selectivity of the collector response against ascorbic acid, which is also oxidized at the generator electrode to immediately and irreversibly produce a redox-inactive species.

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Year:  2018        PMID: 30251536      PMCID: PMC6534271          DOI: 10.1021/acs.analchem.8b02987

Source DB:  PubMed          Journal:  Anal Chem        ISSN: 0003-2700            Impact factor:   6.986


  2 in total

1.  Miniaturized probe on polymer SU-8 with array of individually addressable microelectrodes for electrochemical analysis in neural and other biological tissues.

Authors:  Mahsa Lotfi Marchoubeh; Samuel J Cobb; Miguel Abrego Tello; Mengjia Hu; Andrea Jaquins-Gerstl; Elaine M Robbins; Julie V Macpherson; Adrian C Michael; Ingrid Fritsch
Journal:  Anal Bioanal Chem       Date:  2021-05-07       Impact factor: 4.142

2.  Review: New insights into optimizing chemical and 3D surface structures of carbon electrodes for neurotransmitter detection.

Authors:  Qun Cao; Pumidech Puthongkham; B Jill Venton
Journal:  Anal Methods       Date:  2018-12-21       Impact factor: 2.896

  2 in total

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