Publication: Co-sensitization of Copper Indium Gallium Disulfide and Indium Sulfide on Zinc Oxide nanostructures: effect of morphology in electrochemical carbon dioxide reduction
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KU Authors
Co-Authors
Altaf, Cigdem Tuc
Colak, Tuluhan Olcayto
Karagoz, Emine
Wang, Jiayi
Liu, Ya
Chen, Yubin
Liu, Maochang
Sankir, Nurdan Demirci
Sankir, Mehmet
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Abstract
Recent advances in nanoparticle materials can facilitate the electro-reduction of carbon dioxide (CO2) to form valuable products with high selectivity. Copper (Cu)-based electrodes are promising candidates to drive efficient and selective CO2 reduction. However, the application of Cu-based chalcopyrite semiconductors in the electrocatalytic reduction of CO2 is still limited. This study demonstrated that novel zinc oxide (ZnO)/copper indium gallium sulfide (CIGS)/indium sulfide (InS) heterojunction electrodes could be used in effective CO2 reduction for formic acid production. It has been determined that Faradaic efficiencies for formic acid production using ZnO nanowire (NW) and nanoflower (NF) structures vary due to structural and morphological differences. A ZnO NW/CIGS/InS heterojunction electrode resulted in the highest efficiency of 77.2% and 0.35 mA cm-2 of current density at a −0.24 V (vs. reversible hydrogen electrode) bias potential. Adding a ZTO intermediate layer by the spray pyrolysis method decreased the yield of formic acid and increased the yield of H2. Our work offers a new heterojunction electrode for efficient formic acid production via cost-effective and scalable CO2 reduction. © 2024 The Authors. Published by American Chemical Society.
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Publisher
American Chemical Society
Subject
Chemistry, multidisciplinary
Citation
Has Part
Source
ACS Omega
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DOI
10.1021/acsomega.4c00018