脱氢
化学吸附
催化作用
丙烯
吸附
材料科学
反应性(心理学)
密度泛函理论
电子顺磁共振
丙烷
化学工程
纳米颗粒
光化学
兴奋剂
物理化学
化学
纳米技术
计算化学
有机化学
核磁共振
光电子学
医学
病理
工程类
替代医学
物理
作者
Lukas Rochlitz,Jörg W. A. Fischer,Quentin Pessemesse,Adam H. Clark,Anton Ashuiev,Daniel Klose,Pierre‐Adrien Payard,Gunnar Jeschke,Christophe Copéret
出处
期刊:JACS Au
[American Chemical Society]
日期:2023-06-30
卷期号:3 (7): 1939-1951
被引量:17
标识
DOI:10.1021/jacsau.3c00197
摘要
Propane dehydrogenation is an important industrial reaction to access propene, the world's second most used polymer precursor. Catalysts for this transformation are required to be long living at high temperature and robust toward harsh oxidative regeneration conditions. In this work, combining surface organometallic chemistry and thermolytic molecular precursor approach, we prepared well-defined silica-supported Pt and alloyed PtZn materials to investigate the effect of Ti-doping on catalytic performances. Chemisorption experiments and density functional calculations reveal a significant change in the electronic structure of the nanoparticles (NPs) due to the Ti-doping. Evaluation of the resulting materials PtZn/SiO2 and PtZnTi/SiO2 during long deactivation phases reveal a stabilizing effect of Ti in PtZnTi/SiO2 with a kd of 0.015 h-1 compared to PtZn/SiO2 with a kd of 0.022 h-1 over 108 h on stream. Such a stabilizing effect is also present during a second deactivation phase after applying a regeneration protocol to the materials under O2 and H2 at high temperatures. A combined scanning transmission electron microscopy, in situ X-ray absorption spectroscopy, electron paramagnetic resonance, and density functional theory study reveals that this effect is related to a sintering prevention of the alloyed PtZn NPs in PtZnTi/SiO2 due to a strong interaction of the NPs with Ti sites. However, in contrast to classical strong metal-support interaction, we show that the coverage of the Pt NPs with TiOx species is not needed to explain the changes in adsorption and reactivity properties. Indeed, the interaction of the Pt NPs with TiIII sites is enough to decrease CO adsorption and to induce a red-shift of the CO band because of electron transfer from the TiIII sites to Pt0.
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