Understanding the Light-Driven Enhancement of CO2 Hydrogenation over Ru/TiO2 Catalysts

被引:0
作者
Bu, Yibin [1 ]
Wenderich, Kasper [1 ]
Costa, Nathalia Tavares [1 ]
Weststrate, Kees-Jan C. J. [2 ]
Huijser, Annemarie [1 ]
Mul, Guido [1 ]
机构
[1] Univ Twente, MESA Inst Nanotechnol, Fac Sci & Technol, Photocatalyt Synth Grp, POB 217, NL-7500 AE Enschede, Netherlands
[2] Syngaschem BV, SynCatDIFFER, De Zaale 20, NL-5612 AJ Eindhoven, Netherlands
关键词
photothermal catalysis; Ru/TiO2; CO2; hydrogenation; DRIFT spectroscopy; CO coverage; heat; charge transfer processes; EXCITED-STATE DYNAMICS; CARBON-DIOXIDE; METHANATION; ADSORPTION; SURFACE; H-2; DISSOCIATION; TEMPERATURE; TIO2; PHOTOCATALYSIS;
D O I
10.3390/molecules30122577
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Ru/TiO2 catalysts are well known for their high activity in the hydrogenation of CO2 to CH4 (the Sabatier reaction). This activity is commonly attributed to strong metal-support interactions (SMSIs), associated with reducible oxide layers partly covering the Ru-metal particles. Moreover, isothermal rates of formation of CH4 can be significantly enhanced by the exposure of Ru/TiO2 to light of UV/visible wavelengths, even at relatively low intensities. In this study, we confirm the significant enhancement in the rate of formation of methane in the conversion of CO2, e.g., at 200 degrees C from similar to 1.2 mol g(Ru)(-1).h(-1) to similar to 1.8 mol g(Ru)(-1).h(-1) by UV/Vis illumination of a hydrogen-treated Ru/TiOx catalyst. The activation energy does not change upon illumination-the rate enhancement coincides with a temperature increase of approximately 10 degrees C in steady state (flow) conditions. In-situ DRIFT experiments, performed in batch mode, demonstrate that the Ru-CO absorption frequency is shifted and the intensity reduced by combined UV/Vis illumination in the temperature range of 200-350 degrees C, which is more significant than can be explained by temperature enhancement alone. Moreover, exposing the catalyst to either UV (predominantly exciting TiO2) or visible illumination (exclusively exciting Ru) at small intensities leads to very similar effects on Ru-CO IR intensities, formed in situ by exposure to CO2. This further confirms that the temperature increase is likely not the only explanation for the enhancement in the reaction rates. Rather, as corroborated by photophysical studies reported in the literature, we propose that illumination induces changes in the electron density of Ru partly covered by a thin layer of TiOx, lowering the CO coverage, and thus enhancing the methane formation rate upon illumination.
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页数:22
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