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气体扩散电极的微观模型追踪原位孔隙尺度润湿现象。

Micromodel of a Gas Diffusion Electrode Tracks In-Operando Pore-Scale Wetting Phenomena.

机构信息

RWTH Aachen University, Aachener Verfahrenstechnik - Chemical Process Engineering, Forckenbeckstr. 51, 52074, Aachen, Germany.

DWI - Leibnitz Institute for Interactive Materials, Forckenbeckstr. 50, 52074, Aachen, Germany.

出版信息

Small. 2022 Dec;18(49):e2204012. doi: 10.1002/smll.202204012. Epub 2022 Oct 17.

Abstract

Utilizing carbon dioxide (CO ) as a resource for carbon monoxide (CO) production using renewable energy requires electrochemical reactors with gas diffusion electrodes that maintain a stable and highly reactive gas/liquid/solid interface. Very little is known about the reasons why gas diffusion electrodes suffer from unstable long-term operation. Often, this is associated with flooding of the gas diffusion electrode (GDE) within a few hours of operation. A better understanding of parameters influencing the phase behavior at the electrolyte/electrode/gas interface is necessary to increase the durability of GDEs. In this work, a microfluidic structure with multi-scale porosity featuring heterogeneous surface wettability to realistically represent the behavior of conventional GDEs is presented. A gas/liquid/solid phase boundary was established within a conductive, highly porous structure comprising a silver catalyst and Nafion binder. Inoperando visualization of wetting phenomena was performed using confocal laser scanning microscopy (CLSM). Non-reversible wetting, wetting of hierarchically porous structures and electrowetting were observed and analyzed. Fluorescence lifetime imaging microscopy (FLIM) enabled the observation of reactions on the model electrode surface. The presented methodology enables the systematic evaluation of spatio-temporally evolving wetting phenomena as well as species characterization for novel catalyst materials under realistic GDE configurations and process parameters.

摘要

利用二氧化碳 (CO) 作为利用可再生能源生产一氧化碳 (CO) 的资源,需要具有气体扩散电极的电化学反应器,该电极能够维持稳定且高度反应性的气/液/固界面。对于气体扩散电极为何会遭受不稳定的长期运行的原因,人们知之甚少。通常,这与气体扩散电极 (GDE) 在运行数小时内发生水淹有关。为了提高 GDE 的耐用性,有必要更好地了解影响电解质/电极/气体界面相行为的参数。在这项工作中,提出了一种具有多尺度多孔结构的微流控结构,其具有异质表面润湿性,可真实地代表常规 GDE 的行为。在由银催化剂和 Nafion 粘合剂组成的导电、高多孔结构内建立了气/液/固相界。使用共焦激光扫描显微镜 (CLSM) 对润湿现象进行了非原位可视化。观察到并分析了非可逆润湿、分级多孔结构的润湿和电润湿。荧光寿命成像显微镜 (FLIM) 使我们能够观察模型电极表面上的反应。所提出的方法能够在实际 GDE 配置和工艺参数下,对新型催化剂材料的时空演化润湿现象以及物种特性进行系统评估。

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