Sorbitol dehydration in 1,4-dioxane: Study of reaction conditions and kinetic analysis including mass transfer control

IF 5.2 2区 化学 Q1 CHEMISTRY, APPLIED
J. Blanco-Cejas , I. Fernández-Ruiz , B. Hernández , P. Gutiérrez-Sánchez , M. Montaña , B. García , L.F. Bautista , J. Moreno , J. Iglesias
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Abstract

This work assesses the influence of temperature, catalyst loading and water content on the dehydration of sorbitol to isosorbide using a commercially available porous strong acid resin (Amberlyst A70). The results from the catalytic tests show that the presence of water critically drops the reaction efficiency. Water not only participates in the dehydration reaction but also interacts with the sulfonic acid groups of the catalyst, competing for the adsorption to the catalytic sites with the substrate and intermediate products, varying the performance of the sulfonic acid resin. This has a strong influence on the kinetics of the transformation, so that a comprehensive assessment of different kinetic models for heterogeneous catalytic systems evaluating the role of saturation of catalytic sites, different adsorption isotherms, and different controls in the mass transfer has been carried out. Among all the studied alternatives, the model that describes the best the reaction performance is a Langmuir-Hinshelwood-Hougen-Watson model with saturation on the catalytic sites featured by mass transfer control in the desorption of the intermediate and final products. Despite the experimental tests have been performed in stirred tanks and other studies have not addressed mass transfer from the pores to the solvent core, the control mostly occurs at the catalyst pores. This is particularly observed for the sorbitans acting as intermediate products since they suffer from limitations in desorption and the latter adsorption to continue with the reaction to sorbitans. This study sheds light on the behaviour of strong cation exchange resins as heterogeneous acid catalysts in dehydration reactions, quite common transformations, specially important in the conversion of highly oxygenated biomass-derived molecules.
1,4-二恶烷中山梨糖醇脱水:反应条件及传质控制动力学分析研究
本研究利用市售的多孔强酸树脂(Amberlyst A70),评估温度、催化剂负载和含水量对山梨糖醇脱水成异山梨脂的影响。催化试验结果表明,水的存在严重降低了反应效率。水不仅参与脱水反应,还与催化剂的磺酸基相互作用,与底物和中间产物竞争催化位点的吸附,从而改变了磺酸树脂的性能。这对转化动力学有很强的影响,因此对多相催化体系的不同动力学模型进行了综合评估,评估了催化位点的饱和、不同的吸附等温线和不同的控制在传质中的作用。在所有研究的替代方案中,描述反应性能最好的模型是Langmuir-Hinshelwood-Hougen-Watson模型,该模型在中间产物和最终产物的脱附过程中具有传质控制的催化位点饱和。尽管在搅拌槽中进行了实验测试,其他研究也没有解决从孔到溶剂芯的传质问题,但控制主要发生在催化剂孔中。这对于作为中间产物的山梨醇尤其明显,因为它们在解吸和后一种吸附中受到限制,无法继续与山梨醇反应。这项研究揭示了强阳离子交换树脂作为非均相酸催化剂在脱水反应中的行为,这是非常常见的转化,在高氧生物质衍生分子的转化中特别重要。
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来源期刊
Catalysis Today
Catalysis Today 化学-工程:化工
CiteScore
11.50
自引率
3.80%
发文量
573
审稿时长
2.9 months
期刊介绍: Catalysis Today focuses on the rapid publication of original invited papers devoted to currently important topics in catalysis and related subjects. The journal only publishes special issues (Proposing a Catalysis Today Special Issue), each of which is supervised by Guest Editors who recruit individual papers and oversee the peer review process. Catalysis Today offers researchers in the field of catalysis in-depth overviews of topical issues. Both fundamental and applied aspects of catalysis are covered. Subjects such as catalysis of immobilized organometallic and biocatalytic systems are welcome. Subjects related to catalysis such as experimental techniques, adsorption, process technology, synthesis, in situ characterization, computational, theoretical modeling, imaging and others are included if there is a clear relationship to catalysis.
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