Promoting water dissociation for efficient solar driven CO electroreduction via improving hydroxyl adsorption.

Nat Commun

TJU-NIMS International Collaboration Laboratory, School of Materials Science and Engineering, Key Lab of Advanced Ceramics and Machining Technology (Ministry of Education), Tianjin University, Tianjin, P. R. China.

Published: February 2023

AI Article Synopsis

  • Efficient electrocatalysts are essential for CO electroreduction, but challenges like slow water dissociation and unclear surface reactions need to be addressed.
  • A new strategy using oxygen vacancy engineering on BiOCO significantly enhances protonation, achieving over 90% Faradaic efficiency for formate production and a current density of 162 mA/cm².
  • The study identifies that faster water dissociation and key surface species involved in formate formation improve overall efficiency, leading to a solar-to-formate energy conversion efficiency of 13.3% when combined with a photovoltaic device.*

Article Abstract

Exploring efficient electrocatalysts with fundamental understanding of the reaction mechanism is imperative in CO electroreduction. However, the impact of sluggish water dissociation as proton source and the surface species in reaction are still unclear. Herein, we report a strategy of promoting protonation in CO electroreduction by implementing oxygen vacancy engineering on BiOCO over which high Faradaic efficiency of formate (above 90%) and large partial current density (162 mA cm) are achieved. Systematic study reveals that the production rate of formate is mainly hampered by water dissociation, while the introduction of oxygen vacancy accelerates water dissociation kinetics by strengthening hydroxyl adsorption and reduces the energetic span of CO electroreduction. Moreover, CO* involved in formate formation as the key surface species is clearly identified by electron spin resonance measurements and designed in situ Raman spectroscopy study combined with isotopic labelling. Coupled with photovoltaic device, the solar to formate energy conversion efficiency reaches as high as 13.3%.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9918482PMC
http://dx.doi.org/10.1038/s41467-023-36263-zDOI Listing

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