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用于在异质电极上对跨固液界面的电子转移进行空间表征的光学荧光显微镜

Optical Fluorescence Microscopy for Spatially Characterizing Electron Transfer across a Solid-Liquid Interface on Heterogeneous Electrodes.

作者信息

Choudhary Eric, Velmurugan Jeyavel, Marr James M, Liddle James A, Szalai Veronika

机构信息

Center for Nanoscale Science and Technology, National Institute of Standards and Technology 100 Bureau Dr, Gaithersburg, MD 20899, U.S.A.

Maryland NanoCenter, University of Maryland, College Park, MD 20742, U.S.A.

出版信息

MRS Adv. 2016;1(42):2867-2872. doi: 10.1557/adv.2016.289. Epub 2016 Apr 28.

Abstract

Heterogeneous catalytic materials and electrodes are used for (electro)chemical transformations, including those important for energy storage and utilization. Due to the heterogeneous nature of these materials, activity measurements with sufficient spatial resolution are needed to obtain structure/activity correlations across the different surface features (exposed facets, step edges, lattice defects, grain boundaries, etc.). These measurements will help lead to an understanding of the underlying reaction mechanisms and enable engineering of more active materials. Because (electro)catalytic surfaces restructure with changing environments, it is important to perform measurements . Sub-diffraction fluorescence microscopy is well suited for these requirements because it can operate in solution with resolution down to a few nm. We have applied sub-diffraction fluorescence microscopy to a thin cell containing an electrocatalyst and a solution containing the redox sensitive dye p-aminophenyl fluorescein to characterize reaction at the solid-liquid interface. Our chosen dye switches between a nonfluorescent reduced state and a one-electron oxidized bright state, a process that occurs at the electrode surface. This scheme is used to investigate the activity differences on the surface of polycrystalline Pt, in particular to differentiate reactivity at grain faces and grain boundaries. Ultimately, this method will be extended to study other dye systems and electrode materials.

摘要

多相催化材料和电极用于(电)化学转化,包括对能量存储和利用至关重要的那些转化。由于这些材料的多相性质,需要具有足够空间分辨率的活性测量来获得不同表面特征(暴露面、台阶边缘、晶格缺陷、晶界等)之间的结构/活性相关性。这些测量将有助于理解潜在的反应机制,并实现更具活性材料的工程设计。由于(电)催化表面会随着环境变化而重构,进行测量很重要。亚衍射荧光显微镜非常适合这些要求,因为它可以在溶液中以低至几纳米的分辨率运行。我们已将亚衍射荧光显微镜应用于一个薄电池,该电池包含一种电催化剂和一种含有氧化还原敏感染料对氨基苯基荧光素的溶液,以表征固液界面处的反应。我们选择的染料在非荧光还原态和单电子氧化亮态之间切换,这一过程发生在电极表面。该方案用于研究多晶铂表面的活性差异,特别是区分晶面和晶界处的反应活性。最终,该方法将扩展到研究其他染料体系和电极材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c2b6/5427636/10e3cbe65cff/nihms826140f1.jpg

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