Chizallet Céline, Bouchy Christophe, Larmier Kim, Pirngruber Gerhard
IFP Energies nouvelles, Rond-Point de l'Echangeur de Solaize, BP 3, Solaize 69360, France.
Chem Rev. 2023 May 10;123(9):6107-6196. doi: 10.1021/acs.chemrev.2c00896. Epub 2023 Mar 30.
The Brønsted acidity of proton-exchanged zeolites has historically led to the most impactful applications of these materials in heterogeneous catalysis, mainly in the fields of transformations of hydrocarbons and oxygenates. Unravelling the mechanisms at the atomic scale of these transformations has been the object of tremendous efforts in the last decades. Such investigations have extended our fundamental knowledge about the respective roles of acidity and confinement in the catalytic properties of proton exchanged zeolites. The emerging concepts are of general relevance at the crossroad of heterogeneous catalysis and molecular chemistry. In the present review, emphasis is given to molecular views on the mechanism of generic transformations catalyzed by Brønsted acid sites of zeolites, combining the information gained from advanced kinetic analysis, in situ, and operando spectroscopies, and quantum chemistry calculations. After reviewing the current knowledge on the nature of the Brønsted acid sites themselves, and the key parameters in catalysis by zeolites, a focus is made on reactions undergone by alkenes, alkanes, aromatic molecules, alcohols, and polyhydroxy molecules. Elementary events of C-C, C-H, and C-O bond breaking and formation are at the core of these reactions. Outlooks are given to take up the future challenges in the field, aiming at getting ever more accurate views on these mechanisms, and as the ultimate goal, to provide rational tools for the design of improved zeolite-based Brønsted acid catalysts.
质子交换沸石的布朗斯特酸度在历史上导致了这些材料在多相催化中最具影响力的应用,主要应用于碳氢化合物和含氧化合物的转化领域。在过去几十年里,揭示这些转化在原子尺度上的机制一直是巨大努力的目标。此类研究扩展了我们关于酸度和限域作用在质子交换沸石催化性能中各自作用的基础知识。这些新兴概念在多相催化和分子化学的交叉领域具有普遍相关性。在本综述中,重点是关于沸石布朗斯特酸位点催化的一般转化机制的分子观点,结合从先进动力学分析、原位和操作光谱学以及量子化学计算中获得的信息。在回顾了关于布朗斯特酸位点本身的性质以及沸石催化中的关键参数的现有知识之后,重点关注了烯烃、烷烃、芳香族分子、醇类和多羟基分子所经历的反应。碳 - 碳、碳 - 氢和碳 - 氧键的断裂和形成的基本过程是这些反应的核心。展望了应对该领域未来挑战的方向,旨在对这些机制有更准确的认识,并作为最终目标,为设计改进的基于沸石的布朗斯特酸催化剂提供合理工具。