On the mechanism of high product selectivity for HCOOH using Pb in CO2 electroreduction

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While achieving high product selectivity is one of the major challenges of the CO2 electroreduction technology in general, Pb is one of the few examples with high selectivity that produces formic acid almost exclusively (versus H-2, CO, or other byproducts). In this work, we study the mechanism of CO2 electroreduction reactions using Pb to understand the origin of high formic acid selectivity. In particular, we first assess the proton-assisted mechanism proposed in the literature using density functional calculations and find that it cannot fully explain the previous selectivity experiments for the Pb electrode. We then suggest an alternative proton-coupled-electron-transfer mechanism consistent with existing observations, and further validate a new mechanism by experimentally measuring and comparing the onset potentials for CO2 reduction vs. H-2 production. We find that the origin of a high selectivity of the Pb catalyst for HCOOH production over CO and H-2 lies in the strong O-affinitive and weak C-, H-affinitive characteristics of Pb, leading to the involvement of the *OCHO species as a key intermediate to produce HCOOH exclusively and preventing unwanted H-2 production at the same time
Publisher
ROYAL SOC CHEMISTRY
Issue Date
2016-04
Language
English
Article Type
Article
Keywords

HYDROGEN EVOLUTION REACTION; FIXED-BED REACTOR; CARBON-DIOXIDE; ELECTROCHEMICAL REDUCTION; METAL-ELECTRODES; FORMIC-ACID; AQUEOUS-MEDIUM; AU; ADSORPTION; CONVERSION

Citation

PHYSICAL CHEMISTRY CHEMICAL PHYSICS, v.18, no.14, pp.9652 - 9657

ISSN
1463-9076
DOI
10.1039/c6cp00542j
URI
http://hdl.handle.net/10203/209014
Appears in Collection
EEW-Journal Papers(저널논문)
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