用于甘油分解反应的 KIT-6 磺化催化剂。制备方法的影响

IF 4.8 3区 材料科学 Q1 CHEMISTRY, APPLIED
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引用次数: 0

摘要

在这项工作中,采用了不同磺酸基含量(10% 和 15% S/Si)的 KIT-6 硅胶载体来制备介孔酸催化剂。通过共缩合或接枝方法引入官能团,获得了具有改良性质的催化剂。在使用间歇式反应器对大豆衍生脂肪酸进行甘油分解以获得单、双和三甘油酯的过程中,对催化活性进行了研究。使用真空消除系统中的水分,并将平衡转移到产物上。通过改变合成方法和磺酸含量,研究了催化剂配方的效果。此外,还对产物和副产物的分布进行了综合研究。分析了反应温度、反应物摩尔比(游离脂肪酸:甘油)和催化剂浓度对转化率和选择性的影响。研究发现,通过接枝法合成的带有磺酸基团的 KIT-6 催化剂保留了 KIT-6 的原始结构,而通过共缩合法改性的 KIT-6 催化剂则不同。不过,所有催化剂在甘油分解过程中都提供了足够的催化活性,在 3 小时反应中的转化率相对较高,达到 90%,这表明这些材料具有采用更环保工艺的潜力。除了可逆酯化反应外,还发生了次生反应,降低了对所需产物的选择性,这可能是由于所使用的脂肪酸碳链中存在不饱和现象。此外,还对催化剂的可回收性进行了评估,结果表明催化剂的催化活性可持续三个周期。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

KIT-6 sulfonic catalysts for glycerolisis reaction. Influence of the preparation method

KIT-6 sulfonic catalysts for glycerolisis reaction. Influence of the preparation method

In this work, the KIT-6 silica support functionalized with different contents of sulfonic groups (10 and 15 % S/Si) was employed to prepare mesoporous acid catalysts. Catalysts with modified properties were obtained introducing the functional groups by co-condensation or grafting methods.

The catalytic activity was studied in the glicerolysis of soybean derived fatty acids, for the obtention of mono-, di- and triglycerides using a batch reactor. Vacuum was applied to eliminate water from the system and shift the equilibrium to the products. The effect of the catalytic formulation was studied modifying the synthesis method and the sulfonic content. Additionally, a comprehensive study was conducted regarding the distribution of products and by-products. The effect of reaction temperature, molar ratio of reactants (free fatty acids: glycerol) and catalyst concentration on conversion and selectivity was analyzed.

The solids were studied by numerous characterization techniques. It was found that the KIT-6 catalysts functionalized with sulfonic groups synthesized by grafting retained the original structure of KIT-6, as opposed to those modified by co-condensation. However, all the catalysts provided adequate catalytic activities in glycerolysis with relatively high conversions of 90 % in 3 h of reaction, indicating that these materials have potential for a more environmentally friendly process. In addition to the reversible esterification, secondary reactions occurred that decrease the selectivity to the desired products, which could be attributed to the presence of insaturations in the carbonaceous chain of the fatty acids used. Additionally, the recyclability of the catalysts was evaluated; demonstrating sustained catalytic activity for up to three cycles.

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来源期刊
Microporous and Mesoporous Materials
Microporous and Mesoporous Materials 化学-材料科学:综合
CiteScore
10.70
自引率
5.80%
发文量
649
审稿时长
26 days
期刊介绍: Microporous and Mesoporous Materials covers novel and significant aspects of porous solids classified as either microporous (pore size up to 2 nm) or mesoporous (pore size 2 to 50 nm). The porosity should have a specific impact on the material properties or application. Typical examples are zeolites and zeolite-like materials, pillared materials, clathrasils and clathrates, carbon molecular sieves, ordered mesoporous materials, organic/inorganic porous hybrid materials, or porous metal oxides. Both natural and synthetic porous materials are within the scope of the journal. Topics which are particularly of interest include: All aspects of natural microporous and mesoporous solids The synthesis of crystalline or amorphous porous materials The physico-chemical characterization of microporous and mesoporous solids, especially spectroscopic and microscopic The modification of microporous and mesoporous solids, for example by ion exchange or solid-state reactions All topics related to diffusion of mobile species in the pores of microporous and mesoporous materials Adsorption (and other separation techniques) using microporous or mesoporous adsorbents Catalysis by microporous and mesoporous materials Host/guest interactions Theoretical chemistry and modelling of host/guest interactions All topics related to the application of microporous and mesoporous materials in industrial catalysis, separation technology, environmental protection, electrochemistry, membranes, sensors, optical devices, etc.
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