-
Magnesium impregnated on nax zeolite synthesized from cogon grass silica for fast production of fructose via microwave-assisted catalytic glucose isomerization
- Back
Document
-
Magnesium-impregnated-on-nax-zeolite-synthesized-from-cogon-grass-silica-for-fast-production-of-fructose-via-microwaveassisted-catalytic-glucose-isomerizationCatalystsDownload
Metadata
Document Title
Magnesium impregnated on nax zeolite synthesized from cogon grass silica for fast production of fructose via microwave-assisted catalytic glucose isomerization
Author
Kulawong S., Youngjan S., Khemthong P., Chanlek N., Wittayakun J., Osakoo N.
Name from Authors Collection
Affiliations
Program of Chemistry, Faculty of Science and Technology, Nakhon Ratchasima Rajabhat University, Nakhon Ratchasima, 30000, Thailand; National Nanotechnology Center (NANOTEC), National Science and Technology Development Agency (NSTDA), Klong Laung, Pathumthani12120, Thailand; Reseach Facility, Synchrotron Light Research Institute, Nakhon Ratchasima, 30000, Thailand; School of Chemistry, Institute of Science, Suranaree University of Technology, Nakhon Ratchasima, 30000, Thailand; Institute of Research and Development, Suranaree University of Technology, Nakhon Ratchasima, 30000, Thailand
Type
Article
Source Title
Catalysts
ISSN
20734344
Year
2021
Volume
11
Issue
8
Open Access
Gold
Publisher
MDPI
DOI
10.3390/catal11080981
Format
Abstract
Fructose is a crucial intermediate in the production of several chemical platforms. Fructose is mainly produced from glucose isomerization either through immobilized enzymes or heterogeneous catalysts using a conventional heating source, and this is time-consuming. Thus, this work discloses a fast production of fructose via microwave-assisted catalytic glucose isomerization using Mg catalysts supported on NaX zeolite from cogon grass silica. The catalysts were prepared by the impregnation of magnesium nitrate solution and subsequently transformed into MgO on NaX by calcination. The effect of 3, 6 and 9 wt.% Mg content on NaX on the performance of glucose isomerized to fructose was tested at 90◦C for 15 min. The best catalyst was selected for studying the effect of reaction times of 5, 15, 30 and 60 min. Results from X-ray diffraction (XRD), N2 sorption and CO2 temperature-programmed desorption (CO2-TPD) suggested that crystallinity, surface area and micropore volume decrease but basicity increases with Mg content. The X-ray photoelectron spec-troscopy (XPS) result confirmed the presence of mixed phases of MgO and Mg2CO3 in all catalysts. The glucose conversion enhanced with the Mg loading but the fructose yield gave the highest value with Mg of 6 wt.%, probably due to the tuning of high active sites and surface area. The greatest fructose selectivity and yield (71.9% and 25.8%) were obtained within 15 min by microwave-assisted catalytic reaction, shorter than the reported value in the literature, indicating a suitable reaction time. Mg (6 wt.%)/NaX catalyst preserves the original catalytic performance up to three cycles, indicating that it is a promising catalyst for fructose production. © 2021 by the authors. Licensee MDPI, Basel, Switzerland.
Keyword
Cogon grass silica | Fructose | Glucose | Magnesium oxide | Microwave | NaX zeolite
Funding Sponsor
Suranaree University of Technology; Thailand Science Research and Innovation
License
CC BY
Rights
Author
Publication Source
Scopus
Note
Full text