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High Resolution Image Download MS PowerPoint Slide In situ attenuated total reflection surface-enhanced infrared absorption spectroscopy in conjunction with H–D isotope replacement is used to investigate the dissociation and oxidation of CH 3 CH 2 OH on a Pd electrode in 0.1 M NaOH, with a focus on identifying the chemical nature of the pivotal intermediate in the so-called dual-pathway (C1 and C2) reaction mechanism. Real-time spectroelectrochemical measurements reveal a band at ∼1625 cm –1 showing up prior to the multiply bonded CO ad band. CH 3 CD 2 OH and D 2 O are used to exclude the spectral interference with this band from interfacial acetaldehyde and H 2 O, respectively, confirming for the first time that the ∼1625 cm –1 band is due to the adsorbed acetyl on the Pd electrode in alkaline media. The spectral results suggest that the as-adsorbed acetyl (CH 3 CO ad ) is oxidized to acetate from approximately −0.4 V as the potential moves positively to conclude the C2 pathway. Alternatively, in the C1 pathway, the CH 3 CO ad is decomposed to α-CO ad and β-CH x species on the Pd electrode at potentials more negative than approximately −0.1 V; the α-CO ad species is oxidized to CO 2 at potentials more positive than approximately −0.3 V, while the β-CH x species may be first converted to CO ad at approximately −0.1 V and further oxidized to CO 2 at more positive potentials.
Yang et al. (2014) studied this question.
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