Victor Y. Yukuhiro, Rafael A. Vicente, Pablo S. Fernández* and Angel Cuesta*,
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引用次数: 0
摘要
铂对几种有机分子的电氧化活性会随着电解质阳离子的变化而变化。有人提出,这种效应背后的根本原因是水合阳离子与吸附的 OH(OHad)之间所谓的非共价相互作用。然而,这种现象缺乏光谱学证据,导致对这些电化学过程的微观理解不完整。在此,我们利用衰减全反射模式下的原位表面增强红外吸收光谱(ATR-SEIRAS)和原位 X 射线吸收光谱(XAS),探讨了铂金(Pt)在 LiOH、NaOH 和 KOH 中的甘油(EOG)电氧化过程。我们的研究结果表明,电解质阳离子会影响吸附的 CO(COad)(一种催化毒物)形成和氧化的速率和电位。我们将此归因于金属铂表面含氧物种的稳定性与阳离子有关,以及电极/电解质界面电场强度的不同。我们还证明,非活性铂氧化层的形成也间接取决于阳离子:该层的形成是由反应中间产物(例如 CO)的阳离子氧化去除触发的。这一现象解释了众所周知的阳离子诱导的伏安曲线差异,不仅是甘油,一般醇类和多元醇也是如此。
Alkaline-Metal Cations Affect Pt Deactivation for the Electrooxidation of Small Organic Molecules by Affecting the Formation of Inactive Pt Oxide
The activity of Pt for the electro-oxidation of several organic molecules changes with the cation of the electrolyte. It has been proposed that the underlying reason behind that effect is the so-called noncovalent interactions between the hydrated cations and adsorbed OH (OHad). However, there is a lack of spectroscopic evidence for this phenomenon, resulting in an incomplete understanding at the microscopic level of these electrochemical processes. Herein, we explore the electro-oxidation of glycerol (EOG) on platinum (Pt) in LiOH, NaOH and KOH using in situ surface-enhanced infrared absorption spectroscopy in the attenuated total reflectance mode (ATR-SEIRAS) and in situ X-ray absorption spectroscopy (XAS). Our results show that the electrolyte cation influences the rate and potential at which adsorbed CO (COad), a catalytic poison, is formed and oxidized. We attribute this to the cation-dependent stability of oxygenated species on the metallic Pt surface and the different intensities of the electric field at the electrode/electrolyte interface. We also demonstrate that the formation of an inactive Pt oxide layer is indirectly also cation-dependent: the formation of this layer is triggered by the cation-dependent oxidative removal of reaction intermediates (for instance, CO). This phenomenon explains the well-known cation-induced differences in the voltammetric profiles, of not just glycerol, but generally of alcohols and polyols.
期刊介绍:
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