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原位微传感器在(生物)电化学系统三维多孔阴极中对氢、pH 值、氧化还原电位和电势能的分析方法。

Methodology for In Situ Microsensor Profiling of Hydrogen, pH, Oxidation-Reduction Potential, and Electric Potential throughout Three-Dimensional Porous Cathodes of (Bio)Electrochemical Systems.

机构信息

Environmental Technology, Wageningen University and Research, Wageningen 6708WG, The Netherlands.

Biobased Chemistry and Technology, Wageningen University and Research, Wageningen 6708WG, The Netherlands.

出版信息

Anal Chem. 2023 Feb 7;95(5):2680-2689. doi: 10.1021/acs.analchem.2c03121. Epub 2023 Jan 30.

Abstract

We developed a technique based on the use of microsensors to measure pH and H gradients during microbial electrosynthesis. The use of 3D electrodes in (bio)electrochemical systems likely results in the occurrence of gradients from the bulk conditions into the electrode. Since these gradients, e.g., with respect to pH and reactant/product concentrations determine the performance of the electrode, it is essential to be able to accurately measure them. Apart from these parameters, also local oxidation-reduction potential and electric field potential were determined in the electrolyte and throughout the 3D porous electrodes. Key was the realization that the presence of an electric field disturbed the measurements obtained by the potentiometric type of microsensor. To overcome the interference on the pH measure, a method was validated where the signal was corrected for the local electric field measured with the electric potential microsensor. The developed method provides a useful tool for studies about electrode design, reactor engineering, measuring gradients in electroactive biofilms, and flow dynamics in and around 3D porous electrodes of (bio)electrochemical systems.

摘要

我们开发了一种基于使用微传感器来测量微生物电合成过程中 pH 值和 H 梯度的技术。在(生物)电化学系统中使用 3D 电极可能会导致从主体条件到电极发生梯度。由于这些梯度(例如,关于 pH 值和反应物/产物浓度)决定了电极的性能,因此能够准确测量它们是至关重要的。除了这些参数外,还在电解质中和整个 3D 多孔电极中确定了局部氧化还原电位和电场电位。关键是要认识到电场的存在会干扰通过微传感器的电位型测量获得的测量结果。为了克服 pH 测量的干扰,验证了一种方法,其中信号针对用电位微传感器测量的局部电场进行了校正。所开发的方法为电极设计、反应器工程、测量电活性生物膜中的梯度以及(生物)电化学系统中 3D 多孔电极内外的流动动力学的研究提供了有用的工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/43b2/9909735/538ca189afb6/ac2c03121_0002.jpg

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