Alkene Epoxidation and Oxygen Evolution Reactions Compete for Reactive Surface Oxygen Atoms on Gold Anodes

化学 烯烃 氧气 氧原子 阳极 活性氧 光化学 催化作用 分子 有机化学 电极 物理化学 生物化学
作者
Richa Ghosh,Geoffrey M. Hopping,Jiong Lu,Drew W. Hollyfield,David W. Flaherty
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:147 (2): 1482-1496 被引量:10
标识
DOI:10.1021/jacs.4c08948
摘要

Rates and selectivities for the partial oxidation of organic molecules on reactive electrodes depend on the identity and prevalence of reactive and spectator species. Here, we investigate the mechanism for the epoxidation of 1-hexene (C6H12) with reactive oxygen species formed by electrochemical oxidation of water (H2O) on gold (Au) in an aqueous acetonitrile (CH3CN) electrolyte. Cyclic voltammetry measurements demonstrate that oxygen (O2) evolution competes with C6H12 epoxidation, and the Au surface must oxidize before either reaction occurs. In situ Raman spectroscopy reveals reactive oxygen species and spectators (CH3CN) on the active anode as well as species within the electrochemical double layer. The Faradaic efficiencies toward epoxidation and the ratios of epoxide formation to O2 evolution rates increase linearly with the concentration of C6H12 and depend inversely on the concentration of H2O, which agree with analytical expressions that describe rates for reaction between C6H12 and chemisorbed oxygen atoms (O*) and exclude proposals for other forms of reactive oxygen (e.g., O2*, OOH*, OH*). These findings show that the epoxidation and O2 evolution reactions share a set of common steps that form O* through electrochemical H2O activation but then diverge. Subsequently, epoxides form when O* reacts with C6H12 through a non-Faradaic process, whereas O2 evolves when O* reacts with H2O through a Faradaic process to form OOH*, which then deprotonates. These differences lead to distinct changes in rates in response to electrode potential, and hence, disparate Tafel slopes. Collectively, these results provide a self-consistent mechanism for C6H12 epoxidation that involves reactive O*.
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