Vaněčková Eva, Hrdlička Vojtěch, Šebera Jakub, Hromadová Magdaléna, Kocábová Jana, Sebechlebská Táňa, Kolivoška Viliam
J. Heyrovský Institute of Physical Chemistry of the Czech Academy of Sciences, Dolejškova 3, 182 23, Prague, Czech Republic.
J. Heyrovský Institute of Physical Chemistry of the Czech Academy of Sciences, Dolejškova 3, 182 23, Prague, Czech Republic.
Anal Chim Acta. 2024 Apr 1;1296:342350. doi: 10.1016/j.aca.2024.342350. Epub 2024 Feb 9.
Spectroelectrochemistry (SEC) is a valuable analytical tool providing insights to reaction mechanisms and the structure of species involved in charge transfer reactions. Most of commercial SEC setups are based on platinum working electrodes where the adsorption of species involved in reactions often complicates their analysis.
In this work, we employ an array of pencil graphite rods as an optically transparent working electrode in a custom-made air-tight thin-layer cell suitable for the SEC analysis performed here in acetonitrile as a representative non-aqueous solvent. The functionality of the device was demonstrated by UV-Vis SEC sensing of charge transfer reactions of ruthenium acetylacetonate, ferrocene and ethylviologen dibromide redox probes performed employing the cyclic voltammetry. The SEC response obtained for all three probes confirmed no adsorption and the absence of oxygen in the cell. Furthermore, we have developed and utilized finite element method numerical simulations considering charge transfer reactions coupled with the diffusional mass transport to model the cyclic voltammetric response and the reaction conversion in the thin-layer SEC cell.
Our work paves the way for easy-to-assemble customized air-tight adsorption-free SEC devices with the manufacturing costs well below those of commercially available platforms. Developed computational approaches have the predictive power for optimizing reaction conditions and the geometry of the SEC cell.
光谱电化学(SEC)是一种有价值的分析工具,可深入了解反应机理以及电荷转移反应中所涉及物种的结构。大多数商业SEC装置基于铂工作电极,反应中所涉及物种的吸附常常使分析变得复杂。
在本工作中,我们使用一排铅笔石墨棒作为光学透明工作电极,置于定制的气密薄层池中,该池适用于在此以乙腈作为代表性非水溶剂进行的SEC分析。通过采用循环伏安法对乙酰丙酮钌、二茂铁和二溴化乙基紫精等氧化还原探针的电荷转移反应进行紫外可见光谱电化学传感,证明了该装置的功能。对所有三种探针获得的SEC响应证实了池中没有吸附且不存在氧气。此外,我们开发并利用了有限元方法数值模拟,考虑电荷转移反应与扩散传质的耦合,以模拟薄层SEC池中的循环伏安响应和反应转化率。
我们的工作为易于组装的定制气密无吸附SEC装置铺平了道路,其制造成本远低于市售平台。所开发的计算方法具有预测能力,可用于优化反应条件和SEC池的几何形状。