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生物基纤维素苯磺酸催化果糖脱水制备5-羟甲基糠醛

Bio-based cellulose benzenesulfonic acid-catalyzed dehydration of fructose to 5-hydroxymethylfurfural.

作者信息

Pengsawang Aniwat, Srifa Atthapon, Itthibenchapong Vorranutch

机构信息

National Nanotechnology Center (NANOTEC), National Science and Technology Development Agency (NSTDA) Pathum Thani 12120 Thailand

Department of Chemical Engineering, Faculty of Engineering, Mahidol University Nakhon Pathom 73170 Thailand.

出版信息

RSC Adv. 2025 Apr 4;15(14):10511-10521. doi: 10.1039/d4ra08540j.

Abstract

In this work, cellulose benzenesulfonic acid (CBSA) was successfully prepared by chemically modifying cellulose with a 4-chlorobenzenesulfonic acid reagent in toluene, providing mainly Brønsted acid sites, as determined by pyridine-DRIFT, for use as a potential solid acid catalyst. The as-prepared CBSA was characterized by various techniques, and its catalytic performance for the conversion of fructose to 5-HMF was examined in dimethyl sulfoxide. In particular, the effects of reaction temperature and reaction time on its activity were investigated. The results showed that CBSA with a 10 wt% loading exhibited the highest catalytic activity, achieving a fructose conversion of 100% and a 5-HMF yield of approximately 85% when a reaction temperature of 140 °C and a reaction time of 180 min were employed. The reusability of CBSA was moderately satisfactory. A 5-HMF yield of 55% and a fructose conversion of 97% were obtained after a total of 4 runs (3 reuse cycles). According to the XPS results of the spent catalyst, the decrease in catalytic performance was mainly due to the insufficiency or loss of the -SOH group as the active site for the catalytic dehydration of fructose. These findings could be beneficial for advancing heterogeneous catalysis in saccharide valorization and the development of bio-based solid Brønsted acid catalysts.

摘要

在本工作中,通过在甲苯中用4-氯苯磺酸试剂对纤维素进行化学改性,成功制备了纤维素苯磺酸(CBSA),经吡啶-漫反射红外傅里叶变换光谱(pyridine-DRIFT)测定,其主要提供布朗斯特酸位点,用作潜在的固体酸催化剂。采用多种技术对所制备的CBSA进行了表征,并在二甲基亚砜中考察了其催化果糖转化为5-羟甲基糠醛(5-HMF)的性能。特别研究了反应温度和反应时间对其活性的影响。结果表明,负载量为10 wt%的CBSA表现出最高的催化活性,当反应温度为140℃、反应时间为180 min时,果糖转化率达到100%,5-HMF产率约为85%。CBSA的可重复使用性较为令人满意。经过总共4次运行(3次重复使用循环)后,5-HMF产率为55%,果糖转化率为97%。根据失活催化剂的X射线光电子能谱(XPS)结果,催化性能的下降主要是由于作为果糖催化脱水活性位点的-SOH基团不足或损失。这些发现可能有助于推动糖类 valorization 中的多相催化以及生物基固体布朗斯特酸催化剂的开发。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e75f/11969442/71e43a0e1afb/d4ra08540j-f1.jpg

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