Detailed Information on Publication Record
2021
Non-hydrolytic sol-gel route to a family of hybrid mesoporous aluminosilicate ethanol dehydration catalysts
STÝSKALÍK, Aleš, Imene KORDOGHLI, Claude POLEUNIS, Arnaud DELCORTE, Denis D. DOCHAIN et. al.Basic information
Original name
Non-hydrolytic sol-gel route to a family of hybrid mesoporous aluminosilicate ethanol dehydration catalysts
Authors
STÝSKALÍK, Aleš (203 Czech Republic, belonging to the institution), Imene KORDOGHLI, Claude POLEUNIS, Arnaud DELCORTE, Denis D. DOCHAIN, Zdeněk MORAVEC (203 Czech Republic, belonging to the institution), Július VIDA (703 Slovakia, belonging to the institution), Tomáš HOMOLA (703 Slovakia, belonging to the institution), Carmela APRILE, Luca FUSARO, François DEVRED and Damien P. DEBECKER (guarantor)
Edition
Journal of Materials Science, Springer, 2021, 0022-2461
Other information
Language
English
Type of outcome
Článek v odborném periodiku
Field of Study
10402 Inorganic and nuclear chemistry
Country of publisher
United States of America
Confidentiality degree
není předmětem státního či obchodního tajemství
References:
Impact factor
Impact factor: 4.682
RIV identification code
RIV/00216224:14310/21:00119565
Organization unit
Faculty of Science
UT WoS
000656384200004
Keywords in English
heterogeneous catalysis; hybrid materials; non-aqueous synthesis; surface; alumina; silica;
Tags
International impact, Reviewed
Změněno: 15/2/2023 11:19, Mgr. Marie Šípková, DiS.
Abstract
V originále
Hybrid materials are intensely studied for potential applications in heterogeneous catalysis. Organic groups at the catalyst surface can modify not only its hydrophilicity, but also acidity, hydrothermal stability, porosity, etc. In some cases, tuning such properties leads to improved catalytic performance. Often, however, the organic moieties are limited to methyl groups introduced via post-grafting. Here, a series of mesoporous hybrid aluminosilicate materials was prepared in one pot by non-hydrolytic sol-gel (NHSG). Aromatic, aliphatic, pendant, and bridging organic groups were incorporated. The presence of the organic groups in the bulk and at the outermost surface of the materials was verified by solid-state NMR, IR, ToF-SIMS, and XPS. The hybrid aluminosilicates were tested as catalysts in the gas phase ethanol dehydration to ethylene, and most of them outperformed the inorganic catalyst benchmark. While a direct influence of surface hydrophobicity (as probed by water sorption and water contact angle measurements) appeared unlikely, characterization of acidity (IR-pyridine) revealed that the improved performance for hybrid catalysts could be correlated with a modification of the acidic properties. The latter are determined by the quality of the dispersion of Al centers in the form of isolated sites in the hybrid silica matrix, which itself appears to be influenced by the presence of organic groups in the non-aqueous synthesis. All in all, this study establishes a "ranking" for a variety of organic groups in terms of their influence on the catalyst activity.
Links
GJ20-03636Y, research and development project |
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LM2018127, research and development project |
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