突显层流条件下微通道电极的工作状态:通过半透明电极绘制光致发光和电致化学发光图

IF 4.7 3区 工程技术 Q2 ELECTROCHEMISTRY Electrochemistry Communications Pub Date : 2024-05-24 DOI:10.1016/j.elecom.2024.107759
Yumeng Ma, Catherine Sella, Thomas Delahaye, Laurent Thouin
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引用次数: 0

摘要

对半透明铂电极进行了设计和优化,以便在流动条件下的微通道中实现光致发光(PL)和电化学发光(ECL)。利用三(2,2′-联吡啶基)钌(II) (Ru(bpy)32+) 的发光特性,绘制了通过半透明微通道电极的稳态发光图。因此,为了在实验中突出电极的工作条件,特别是电极上游边缘对法拉第电流起作用的活性区,我们施加了几种扩散-对流制度。在电极表面建立了随流速变化的 PL 和 ECL 曲线。PL 曲线证实了质量传输对过程的控制。在实验精度范围内进行的数值模拟验证了这些数据。共反应物三正丙胺(TPA)存在时的 ECL 发射也受到质量迁移的限制。不过,相比之下,ECL 曲线的特征表明了涉及 Ru(bpy)32+ 再生和 TPA 消耗的基本机制的复杂性。
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Highlighting the operating regimes of microchannel electrodes under laminar flow: Mapping of photoluminescence and electrochemiluminescence through semi-transparent electrodes

Semi-transparent platinum electrodes were designed and optimized to implement photoluminescence (PL) and electrochemiluminescence (ECL) in microchannels under flow conditions. The luminescence properties of tris(2,2′-bipyridyl)ruthenium(II) (Ru(bpy)32+) were used to map steady-state emitted light through semi-transparent microchannel electrodes. Several diffusive-convective regimes were thus imposed in order to experimentally highlight the operating conditions of the electrodes, in particular the active zones at their upstream edges contributing to the Faradaic current. PL and ECL profiles were established on the electrode surfaces as a function of flow rate. The PL profiles confirmed the control of the process by mass transport. The data were validated by numerical simulations within the limits of experimental accuracy. ECL emission in presence of the co-reactant tri-n-propylamine (TPA) was also limited by mass transport. However, in comparison the characteristics of the ECL profiles demonstrated the complexity of the underlying mechanism involving Ru(bpy)32+ regeneration and TPA consumption.

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来源期刊
Electrochemistry Communications
Electrochemistry Communications 工程技术-电化学
CiteScore
8.50
自引率
3.70%
发文量
160
审稿时长
1.2 months
期刊介绍: Electrochemistry Communications is an open access journal providing fast dissemination of short communications, full communications and mini reviews covering the whole field of electrochemistry which merit urgent publication. Short communications are limited to a maximum of 20,000 characters (including spaces) while full communications and mini reviews are limited to 25,000 characters (including spaces). Supplementary information is permitted for full communications and mini reviews but not for short communications. We aim to be the fastest journal in electrochemistry for these types of papers.
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