Reaction Kinetics of Levulinic Acid Synthesis from Glucose Using Bronsted Acid Catalyst

IF 1.3 Q3 ENGINEERING, CHEMICAL Bulletin of Chemical Reaction Engineering and Catalysis Pub Date : 2021-06-21 DOI:10.21203/rs.3.rs-609706/v1
M. E. Toif, M. Hidayat, R. Rochmadi, A. Budiman
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引用次数: 4

Abstract

Glucose is the primary derivative of lignocellulosic biomass, which is abundantly available. Glucose has excellent potential to be converted into valuable compounds such as ethanol, sorbitol, gluconic acid, and levulinic acid (LA). Levulinic acid is a very promising green platform chemical. It is composed of two functional groups, ketone and carboxylate groups which can act as highly reactive electrophiles for nucleophilic attack so it has extensive applications, including fuel additives, raw materials for the pharmaceutical industry, and cosmetics. The reaction kinetics of LA synthesis from glucose using hydrochloric acid catalyst (bronsted acid) were studied in a wide range of operating conditions, i.e., temperature of 140-180 oC, catalyst concentration of 0.5-1.5 M, and initial glucose concentration of 0.1-0.5 M. The highest LA yield is 48.34 %wt at 0.1 M initial glucose concentration, 1 M HCl, and temperature of 180 oC. The experimental results show that the bronsted acid catalyst's reaction pathway consists of glucose decomposition to levoglucosan (LG), conversion of LG to 5-hydroxymethylfurfural (HMF), and rehydration of HMF to LA. The experimental data yields a good fitting by assuming a first-order reaction model.
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Bronsted酸催化葡萄糖合成乙酰丙酸的反应动力学
葡萄糖是木质纤维素生物质的主要衍生物,其储量丰富。葡萄糖有极好的潜力转化为有价值的化合物,如乙醇、山梨醇、葡萄糖酸和乙酰丙酸(LA)。乙酰丙酸是一种很有前途的绿色平台化学品。它由两个官能团,酮和羧酸基团组成,它们可以作为亲核攻击的高活性亲电试剂,因此它具有广泛的应用,包括燃料添加剂,制药工业的原料和化妆品。在温度140 ~ 180℃,催化剂浓度0.5 ~ 1.5 M,初始葡萄糖浓度0.1 ~ 0.5 M的条件下,研究了盐酸(bronsted酸)催化葡萄糖合成LA的反应动力学。在初始葡萄糖浓度0.1 M, HCl 1 M,温度180℃时,LA收率最高,为48.34% wt。实验结果表明,bronsted酸催化剂的反应途径包括葡萄糖分解为左旋葡聚糖(LG), LG转化为5-羟甲基糠醛(HMF), HMF再水合为LA。通过假设一级反应模型,实验数据得到了很好的拟合。
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来源期刊
CiteScore
3.20
自引率
6.70%
发文量
52
审稿时长
12 weeks
期刊介绍: Bulletin of Chemical Reaction Engineering & Catalysis, a reputable international journal, provides a forum for publishing the novel technologies related to the catalyst, catalysis, chemical reactor, kinetics, and chemical reaction engineering. Scientific articles dealing with the following topics in chemical reaction engineering, catalysis science and engineering, catalyst preparation method and characterization, novel innovation of chemical reactor, kinetic studies, etc. are particularly welcome. However, articles concerned on general chemical engineering process are not covered and out of scope of this journal
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