Tuning the catalytic acidity in AlO nanofibers with mordenite nanocrystals for dehydration reactions
Alumina (Al 2 O 3 ) is one of the most used supports in the chemical industry due to its exceptional thermal stability, surface area, and acidic properties. Mesoscopic structured alumina with adequate acidic properties is important in catalysis to enhance the selectivity and conversion of certain re...
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Published in | Catalysis science & technology Vol. 12; no. 13; pp. 4243 - 4254 |
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Main Authors | , , , , , , , , , |
Format | Journal Article |
Published |
04.07.2022
|
Online Access | Get full text |
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Summary: | Alumina (Al
2
O
3
) is one of the most used supports in the chemical industry due to its exceptional thermal stability, surface area, and acidic properties. Mesoscopic structured alumina with adequate acidic properties is important in catalysis to enhance the selectivity and conversion of certain reactions and processes. This study introduces a synthetic method based on electrospinning to produce Al
2
O
3
nanofibers (ANFs) with zeolite mordenite (MOR) nanocrystals (hereafter, hybrid ANFs) to tune the textural and surface acidity properties. The hybrid ANFs with electrospinning form a non-woven network with macropores. ANF-HMOR,
i.e.
, ANFs containing protonated mordenite (HMOR), shows the highest total acidity of
ca.
276 μmol g
−1
as determined with infrared spectroscopy using pyridine as a molecular probe (IR-Py). IR-Py results reveal that Lewis acid sites are prominently present in the hybrid ANFs. Brønsted acid sites are also observed in the hybrid ANFs and are associated with the HMOR presence. The functionality of hybrid ANFs is evaluated during methanol dehydration to dimethyl ether (DME). The proof of concept reaction reveals that ANF-HMOR is the more active and selective catalyst with 87% conversion and nearly 100% selectivity to DME at 573 K. The results demonstrate that the textural properties and the acid site type and content can be modulated in hybrid ANF structures, synergistically improving the selectivity and conversion during the methanol dehydration reaction. From a broader perspective, our results promote the utilization of hybrid structural materials as a means to tune chemical reactions selectively.
The chemical and structural properties of Al
2
O
3
are tuned for dehydration reactions. The synergy between the structured Al
2
O
3
shaped as nanofiber and the acid site nature of the zeolite mordenite in the nanofiber improves the dehydration reaction. |
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Bibliography: | https://doi.org/10.1039/d2cy00143h Electronic supplementary information (ESI) available. See DOI |
ISSN: | 2044-4753 2044-4761 |
DOI: | 10.1039/d2cy00143h |