研究目的
To investigate the deuterium kinetic isotope effect in the photochemistry of methanol on TiO2(110) to identify the rate-determining step and understand the reaction mechanism.
研究成果
The cleavage of O-H bond is the rate-determining step in the photocatalyzed dissociation of methanol on TiO2(110), with the reaction rate of MeOH being ~1.3 times that of MeOD. The results suggest the involvement of photogenerated charge carriers in the C-H bond break reaction, while the O-H cleavage is likely a thermal reaction. The conversion of methanol into methoxy is crucial in the photochemistry of methanol on TiO2(110) and possibly other metal oxide semiconductor surfaces.
研究不足
The study is limited to the photocatalyzed dissociation of methanol on TiO2(110) under specific experimental conditions. The involvement of photogenerated charge carriers in the reaction mechanism requires further investigation.
1:Experimental Design and Method Selection:
Time-dependent two-photon photoemission spectroscopy (2PPE) was used to monitor the kinetics of photocatalyzed dissociation of methanol on TiO2(110).
2:0). Sample Selection and Data Sources:
2. Sample Selection and Data Sources: Methanol isotopologues (CH3OH, CH3OD, CD3OH, CD3OD) were used to study the isotope effect.
3:List of Experimental Equipment and Materials:
A UHV apparatus with a hemispherical electron analyzer (PHOIBOS 100, SPECS) and a CCD camera (PCO Sensicam) for analyzing and detecting photoelectrons. A Ti: Sapphire oscillator (Synergy, Femtolasers) for two-photon excitation.
4:Experimental Procedures and Operational Workflow:
Methanol was dosed onto the TiO2(110) surface at 120K, then flashed to 190K to prepare a saturated first layer. 2PPE spectra were recorded consecutively with a CCD exposure time of 1 second.
5:Data Analysis Methods:
The evolution of the excited resonance signal was fitted with a fractal-like kinetic model to extract the rate coefficients.
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