Clay-supported bio-based Lewis acid ionic liquid as a potent catalyst for the dehydration of fructose to 5- hydroxymthylfurfural

Author:

Yaghoubi Soheila1,Sadjadi Samahe2,Zhong Xuemin3,Yuan Peng4,Heravi Majid1

Affiliation:

1. Alzahra University

2. Iran polymer and Petrochemical Institute

3. Chinese Academy of Sciences

4. Guangdong University of Technology

Abstract

Abstract Caffeine and halloysite nanoclay mineral were used as bio-based compounds to synthesize a novel Lewis acid heterogeneous catalyst. To prepare the catalyst, halloysite was functionalized with 2,4,6-trichloro-1,3,5-triazine and reacted with caffeine. Caffeine was then converted to ionic liquid via a reaction with ZnCl2. The catalyst was characterized using SEM/EDS/mapping, FTIR, TGA, XRD, BET and applied for promoting the dehydration of fructose to 5-hydroxymthylfurfural. To investigate the effects of the reaction variables, response surface methodology was used. The product was achieved in 98.5% in 100 min using a catalyst loading of 30 wt% at 100°C. Moreover, the catalyst was highly recyclable and stable. Comparison of the catalytic activity of the catalyst with that of halloysite and a control catalyst with one caffeine-based Lewis acid ionic liquid confirmed the superior activity of the former and the important role of 2,4,6-trichloro-1,3,5-triazine for increasing the number of the grafted caffeine and thus the acidic sites of the catalyst. A plausible reaction mechanism was proposed, and the activity of the catalyst for other carbohydrates was also studied. According to the results, this catalyst catalyzed the reaction of other substrates to furnish 5-hydroxymthylfurfural in low to moderate yields.

Publisher

Research Square Platform LLC

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