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Photoelectrocatalytic hydrogen generation coupled with reforming of glucose into valuable chemicals using a nanostructured WO3 photoanode

Chemistry

Photoelectrocatalytic hydrogen generation coupled with reforming of glucose into valuable chemicals using a nanostructured WO3 photoanode

K. Jakubow-piotrowska, B. Witkowski, et al.

This groundbreaking research by Katarzyna Jakubow-Piotrowska, Bartłomiej Witkowski, and Jan Augustynski unveils a photoelectrochemical device featuring a unique WO3 photoanode that efficiently produces hydrogen while transforming glucose into valuable compounds. Experience a remarkable 64% Faradaic yield at just 15% glucose conversion!... show more
Abstract
Coupling the photo-oxidation of biomass derived substrates with water splitting in a photoelectrochemical (PEC) cell is a broadly discussed approach intended to enhance efficiency of hydrogen generation at the cathode. Here, we report a PEC device employing a nanostructured semitransparent WO3 photoanode that, irradiated with simulated solar light achieves large photocurrents of 6.5 mA cm−2 through oxidation of glucose, a common carbohydrate available in nature that can be obtained by processing waste biomass. The attained photocurrents are in a large part due to the occurrence of the photocurrent doubling, where oxidation of glucose by the photogenerated positive hole is followed by injection by the formed intermediate of an electron into the conduction band of WO3. Selection of an appropriate supporting electrolyte enabled effective reforming of glucose into valuable products: gluconic and glucaric acids, erythrose and arabinose with up to 64% total Faradaic yield attained at ca 15% glucose conversion.
Publisher
Communications Chemistry
Published On
Oct 13, 2022
Authors
Katarzyna Jakubow-Piotrowska, Bartłomiej Witkowski, Jan Augustynski
Tags
photoelectrochemical device
WO3 photoanode
hydrogen production
glucose oxidation
Faradaic yield
nanostructured materials
renewable energy
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