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Revisiting side-chain alkylation of toluene to styrene: Critical role of microporous structures in catalysts

机译:将甲苯的侧链烷基化重新探测到苯乙烯:微孔结构在催化剂中的关键作用

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摘要

Due to potential advantages such as large availability and low cost of reactant feedstocks, the side-chain alkylation of toluene with methanol has been investigated as an alternative pathway for producing styrene. In this study, the effects of acid-base properties and microporous structures of zeolite catalysts were comprehensively investigated. The results showed that the main active sites for this reaction are base sites, which are required for activating the methyl group in toluene and converting methanol into HCHO, an alkylating agent. On the other hand, the role of acid sites is to stabilize toluene via Lewis acid-base interactions. Our results indicated that a significant dilemma exists in the design of the catalyst. Catalysts having sufficient basicity generally have limited Lewis acidity, which is ineffective for stabilizing toluene under the reaction conditions at elevated temperatures. Fortunately, the micropores of zeolites (e.g., X zeolites) provide secondary interactions such as van der Waals forces to toluene, which substantially enhance toluene stabilization, and thereby, the alkylation activity. In contrast, the model catalysts synthesized using mesoporous A zeolite showed no toluene adsorption at all due to the absence of any accessible microporosity. Consequently, even though the A zeolite catalysts have similar acid-base properties to those of the X zeolite catalysts, they showed no detectable toluene alkylation activity and produced only the decomposition products of methanol. The results clearly showed the importance of secondary interactions (or solvation effects) in zeolite catalysis, and explained why basic zeolites are superior to the conventional basic metal oxides that lack microporosity. (C) 2019 Elsevier Inc. All rights reserved.
机译:由于潜在的优点如大型可用性和反应原料的低成本,已经研究了甲苯的甲苯的侧链烷基化作为制备苯乙烯的替代途径。在该研究中,综合研究了酸碱性能和微孔结构的影响。全面研究了沸石催化剂的影响。结果表明,该反应的主要活性位点是基本位点,其是将甲苯中的甲基活化并将甲醇转化为Hcho,烷基化剂。另一方面,酸部位的作用是通过路易斯酸碱相互作用稳定甲苯。我们的结果表明,催化剂的设计中存在显着的困境。具有足够碱性的催化剂通常具有有限的路易斯酸度,这对于在升高的温度下稳定在反应条件下稳定甲苯的无效。幸运的是,沸石的微孔(例如,X沸石)提供二次相互作用,例如Van der WaAss力对甲苯,其基本上增强甲苯稳定,从而烷基化活性。相反,使用介孔沸石合成的模型催化剂由于没有任何可接近的微孔率而根本没有甲苯吸附。因此,即使沸石催化剂与X沸石催化剂的那些具有相似的酸碱性质,它们也没有显示出可检测的甲苯烷基化活性,并仅制备甲醇的分解产物。结果清楚地表明沸石催化中的二次相互作用(或溶剂化效应)的重要性,并解释了碱性沸石优于缺乏微孔率的常规碱性金属氧化物。 (c)2019 Elsevier Inc.保留所有权利。

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  • 来源
    《Journal of Catalysis》 |2019年第2019期|共12页
  • 作者单位

    Korea Adv Inst Sci &

    Technol Dept Chem &

    Biomol Engn Daejeon 34141 South Korea;

    Korea Adv Inst Sci &

    Technol Dept Chem &

    Biomol Engn Daejeon 34141 South Korea;

    Korea Adv Inst Sci &

    Technol Dept Chem Daejeon 34141 South Korea;

    Korea Adv Inst Sci &

    Technol Dept Chem &

    Biomol Engn Daejeon 34141 South Korea;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 催化;
  • 关键词

    Zeolite; Toluene; Side-chain alkylation; Styrene;

    机译:沸石;甲苯;侧链烷基化;苯乙烯;

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