Jairton Dupont*, Bárbara C. Leal, Pedro Lozano, Adriano L. Monteiro, Pedro Migowski and Jackson D. Scholten,
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引用次数: 0
Abstract
Ionic liquids (ILs) have unique physicochemical properties that make them advantageous for catalysis, such as low vapor pressure, non-flammability, high thermal and chemical stabilities, and the ability to enhance the activity and stability of (bio)catalysts. ILs can improve the efficiency, selectivity, and sustainability of bio(transformations) by acting as activators of enzymes, selectively dissolving substrates and products, and reducing toxicity. They can also be recycled and reused multiple times without losing their effectiveness. ILs based on imidazolium cation are preferred for structural organization aspects, with a semiorganized layer surrounding the catalyst. ILs act as a container, providing a confined space that allows modulation of electronic and geometric effects, miscibility of reactants and products, and residence time of species. ILs can stabilize ionic and radical species and control the catalytic activity of dynamic processes. Supported IL phase (SILP) derivatives and polymeric ILs (PILs) are good options for molecular engineering of greener catalytic processes. The major factors governing metal, photo-, electro-, and biocatalysts in ILs are discussed in detail based on the vast literature available over the past two and a half decades. Catalytic reactions, ranging from hydrogenation and cross-coupling to oxidations, promoted by homogeneous and heterogeneous catalysts in both single and multiphase conditions, are extensively reviewed and discussed considering the knowledge accumulated until now.
离子液体(ILs)具有独特的物理化学特性,使其在催化方面具有优势,例如低蒸气压、不易燃、高热稳定性和化学稳定性,以及增强(生物)催化剂活性和稳定性的能力。ILs 可作为酶的活化剂、选择性溶解底物和产物并降低毒性,从而提高生物(转化)的效率、选择性和可持续性。它们还可以多次循环和重复使用,而不会失去功效。基于咪唑阳离子的 IL 在结构组织方面更受青睐,催化剂周围有一层半组织层。碘化镓可充当容器,提供密闭空间,从而调节电子和几何效应、反应物和产物的混溶性以及物种的停留时间。IL 可以稳定离子和自由基物种,并控制动态过程的催化活性。支撑IL相(SILP)衍生物和聚合物IL(PIL)是绿色催化过程分子工程的良好选择。根据过去二十五年的大量文献,我们详细讨论了影响 IL 中金属催化剂、光催化剂、电催化剂和生物催化剂的主要因素。考虑到迄今为止所积累的知识,该书广泛回顾和讨论了在单相和多相条件下由均相和异相催化剂促进的从氢化、交叉耦合到氧化的各种催化反应。
期刊介绍:
Chemical Reviews is a highly regarded and highest-ranked journal covering the general topic of chemistry. Its mission is to provide comprehensive, authoritative, critical, and readable reviews of important recent research in organic, inorganic, physical, analytical, theoretical, and biological chemistry.
Since 1985, Chemical Reviews has also published periodic thematic issues that focus on a single theme or direction of emerging research.