Pande Nakul, Chandrasekar Shri K, Lohse Detlef, Mul Guido, Wood Jeffery A, Mei Bastian T, Krug Dominik
Physics of Fluids, University of Twente, Enschede, The Netherlands.
Photo Catalytic Synthesis, University of Twente, Enschede, The Netherlands.
J Phys Chem Lett. 2020 Sep 3;11(17):7042-7048. doi: 10.1021/acs.jpclett.0c01575. Epub 2020 Aug 14.
Confocal fluorescence microscopy is a proven technique, which can image near-electrode pH changes. For a complete understanding of electrode processes, time-resolved measurements are required, which have not been achieved previously. Here we present the first measurements of time-resolved pH profiles with confocal fluorescence microscopy. The experimental results compare favorably with a one-dimensional reaction-diffusion model; this holds up to the point where the measurements reveal three-dimensionality in the pH distribution. Specific factors affecting the pH measurement such as attenuation of light and the role of dye migration are also discussed in detail. The method is further applied to reveal the buffer effects observed in sulfate-containing electrolytes. The work presented here is paving the way toward the use of confocal fluorescence microscopy in the measurement of 3D time-resolved pH changes in numerous electrochemical settings, for example, in the vicinity of bubbles.
共聚焦荧光显微镜是一种成熟的技术,能够对电极附近的pH值变化进行成像。为了全面理解电极过程,需要进行时间分辨测量,而这在以前尚未实现。在此,我们展示了首次使用共聚焦荧光显微镜进行时间分辨pH分布测量的结果。实验结果与一维反应扩散模型的比较结果良好;在测量揭示pH分布的三维特性之前,该模型都适用。还详细讨论了影响pH测量的具体因素,如光的衰减和染料迁移的作用。该方法进一步用于揭示在含硫酸盐电解质中观察到的缓冲效应。本文介绍的工作为在众多电化学环境中,例如在气泡附近,使用共聚焦荧光显微镜测量三维时间分辨pH变化铺平了道路。