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Published on: October 25, 2017
Modulating Oxygen Activity via Cation Doping for Efficient High-Temperature Carbon Dioxide Electrolysis
Zhibo Shang1, Suting He1, Zilin Ma1
1School of Environment and Energy, South China University of Technology, Guangzhou 510006, P. R. China.
Abstract:
High-temperature solid oxide electrolysis cells (SOECs) offer a promising pathway for CO2-to-CO conversion yet are hindered by cathode inactivity. This study demonstrates cation doping in Sr2Ti0.8Fe1.2O6-δ (STF), specifically forming Sr2Ti0.8FeNi0.2O6-δ (STFN) and Sr2Ti0.8FeCo0.2O6-δ (STFC), as an effective strategy for modulating oxygen activity and enhancing CO2 electrolysis performance. The STFC cathode delivers optimal results, achieving a 1.15 A cm-2 current density, 8.01 mL min-1 cm-2 CO production rate, and >99% Faradaic efficiency at 1.6 V and 800 °C. Advanced spectroscopic techniques combined with density functional theory calculations reveal that Co doping increases oxygen activity, evidenced by an upshifted O 2p band center and reduced oxygen vacancy formation energy. Consequently, CO2 adsorption for carbonate (CO32-) intermediate formation is facilitated, and the energy barrier for CO generation is reduced. A techno-economic assessment projects a competitive CO production cost of $748 per ton. These insights provide fundamental guidelines for the design of high-activity catalysts in high-temperature electrochemical systems.
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