2025/12/09 by Miha Okorn, Kristijan Lorber, Matjaž Mazaj +2 · 1 voice
Energy · Materials Science · #Advanced Photocatalysis Techniques #CO2 Reduction Techniques and Catalysts #Catalytic Processes in Materials Science
paper · doi:10.1002/cey2.70102
openalex publication_date 2025/12/09 · openalex created_date 2025/12/10 · openalex updated_date 2026/07/23
ABSTRACT Light‐assisted catalysis is a promising approach for accelerating the thermally driven catalytic reverse water gas shift (RWGS) reaction, which converts CO 2 and H 2 into valuable CO. In this work, pure CeO 2 nanorods and titanium‐modified CeO 2 nanorods were functionalized with 1–30 wt.% of copper. The catalyst containing 3 wt.% of copper (3Cu–CeTiO 2 ) was the most active for the light‐assisted RWGS reaction. Illuminating the 3Cu–CeTiO 2 catalyst with 770 mW cm −2 of visible light resulted in a CO rate, which was up to 57 times higher than that under purely thermal conditions at identical catalyst temperature. Catalyst illumination with wavelengths shorter than 450 nm triggers simultaneous photoexcitation of the Ti‐doped CeO 2− x support and Cu nanoparticles. This accelerates the RWGS reaction approximately twofold more, compared to excitation of the copper phase alone. Copper is responsible for H 2 dissociation, the Cu–O v –Ce interface active sites enable the catalytic reaction, and titanium doping diminishes emissive recombination, making photoexcitation more efficient. Furthermore, the E a for CO formation decreased drastically from 92 to 26 kJ mol −1 during the light‐assisted reaction, revealing a change of the reaction mechanism and lowered energetics of the rate‐determining step. Our kinetic analysis and operando DRIFTS analysis suggest that hydrogen species chemisorb more strongly under illumination, and the most abundant surface species (carbonates and formates) hydrogenate and dissociate faster, resulting in accelerated CO formation.