Syngas production at intermediate temperature through H2O and CO2 electrolysis with a Cu-based solid oxide electrolyzer cell

Abstract Solid Oxide Electrolyzer Cells (SOECs) are promising energy devices for the production of syngas (H 2 /CO) by H 2 O and/or CO 2 electrolysis. Here we developed a Cu–Ce 0.9 Gd 0.1 O 2− δ /Ce 0.8 Gd 0.2 O 2− δ /Ba 0.5 Sr 0.5 Co 0.8 Fe 0.2 O 3− δ -Ce 0.8 Gd 0.2 O 2− δ cell and performed H 2 O and CO 2 electrolysis experiments in the intermediate temperature range (600°C–700 °C). As a baseline, the cell was first tested in fuel cell operation mode; the sample shows a maximum power density peak of 104 mW cm −2 at 700 °C under pure hydrogen and air. H 2 O electrolysis testing revealed a steady production of hydrogen with a Faraday's efficiency of 32% at 700 °C at an imposed current density of −78 mA cm −2 . CO production was observed during CO 2 electrolysis but higher cell voltages were required. A lower efficiency of about 4% was obtained at 700 °C at an imposed current density of −660 mA cm −2 . These results confirm that syngas production is feasible by water and carbon dioxide electrolysis but further improvements from both the manufacturing and the electrocatalytic aspects are needed to reach higher yields and efficiencies.

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