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沸石固定金属纳米颗粒:催化领域的新视角。

Zeolite Fixed Metal Nanoparticles: New Perspective in Catalysis.

作者信息

Wang Yeqing, Wang Chengtao, Wang Lingxiang, Wang Liang, Xiao Feng-Shou

机构信息

Ningbo Research Institute, Zhejiang University, Ningbo 315100, China.

Department of Chemistry, Zhejiang University, Hangzhou 310028, China.

出版信息

Acc Chem Res. 2021 Jun 1;54(11):2579-2590. doi: 10.1021/acs.accounts.1c00074. Epub 2021 May 17.

Abstract

ConspectusLoading metal nanoparticles on the surface of solid supports has emerged as an efficient route for the preparation of heterogeneous catalysts. Notably, most of these supported metal nanoparticles still have shortcomings such as dissatisfactory activity and low product selectivity in catalysis. In addition, these metal nanoparticles also suffer from deactivation because of nanoparticle sintering, leaching, and coke formation under harsh conditions. The fixation of metal nanoparticles within zeolite crystals should have advantages of high activities for metal nanoparticles and excellent shape selectivity for zeolite micropores as well as extraordinary stability of metal nanoparticles immobilized with a stable zeolite framework, which is a good solution for the shortcomings of supported metal nanoparticles.Materials with metal nanostructures within the zeolite crystals are normally denoted as metal@zeolite, where the metal nanoparticles with diameters similar to those of industrial catalysts are usually larger than the micropore size. These metal nanoparticles are enveloped with the zeolite rigid framework to prevent migration under harsh reaction conditions, which is described as a fixed structure. The zeolite micropores allow the diffusion of reactants to the metal nanoparticles. As a result, metal@zeolite catalysts combine the features of both metal nanoparticles (high activity) and zeolites (shape selectivity and thermal stability), compared with the supported metal nanoparticles.In this Account, we describe how the zeolite micropore and metal nanoparticle synergistically work to improve the catalytic performance by the preparation of a variety of metal@zeolite catalysts. Multiple functions of zeolites with respect to the metal nanoparticles are highlighted, including control of the reactant/product diffusion in the micropores, the adjustment of reactant adsorption on the metal nanoparticles, and sieving the reactants and products with zeolite micropores. Furthermore, by optimizing the wettability of the zeolite external surface, the zeolite crystals could form a nanoreactor to efficiently enrich the crucial intermediates, thus boosting the performance in low-temperature methane oxidation. Also, the microporous confinement weakens the adsorption of C intermediates on the metal sites, accelerating the C-C coupling to improve C oxygenate productivity in syngas conversion. In particular, the zeolite framework efficiently stabilizes the metal nanoparticles against sintering and leaching to give durable catalysts. Clearly, this strategy not only guides the rational design of efficient heterogeneous catalysts for potential applications in a variety of industrial chemical reactions but also accelerates the fundamental understanding of the catalytic mechanisms by providing new model catalysts.

摘要

综述

将金属纳米颗粒负载在固体载体表面已成为制备多相催化剂的有效途径。值得注意的是,大多数这些负载型金属纳米颗粒在催化方面仍存在活性不理想和产物选择性低等缺点。此外,由于在苛刻条件下纳米颗粒烧结、浸出和积炭,这些金属纳米颗粒也会失活。将金属纳米颗粒固定在沸石晶体内应具有金属纳米颗粒活性高、沸石微孔形状选择性优异以及用稳定的沸石骨架固定的金属纳米颗粒具有非凡稳定性等优点,这是解决负载型金属纳米颗粒缺点的良好方案。

沸石晶体内具有金属纳米结构的材料通常表示为金属@沸石,其中直径与工业催化剂相似的金属纳米颗粒通常大于微孔尺寸。这些金属纳米颗粒被沸石刚性骨架包裹,以防止在苛刻反应条件下迁移,这被描述为一种固定结构。沸石微孔允许反应物扩散到金属纳米颗粒。因此,与负载型金属纳米颗粒相比,金属@沸石催化剂兼具金属纳米颗粒(高活性)和沸石(形状选择性和热稳定性)的特点。

在本综述中,我们描述了通过制备各种金属@沸石催化剂,沸石微孔和金属纳米颗粒如何协同作用以提高催化性能。突出了沸石对金属纳米颗粒的多种功能,包括控制微孔中反应物/产物的扩散、调节反应物在金属纳米颗粒上的吸附以及用沸石微孔筛分反应物和产物。此外,通过优化沸石外表面的润湿性,沸石晶体可以形成纳米反应器以有效地富集关键中间体,从而提高低温甲烷氧化性能。而且,微孔限制削弱了C中间体在金属位点上的吸附,加速了C-C偶联以提高合成气转化中C含氧化合物的产率。特别地,沸石骨架有效地稳定了金属纳米颗粒,防止烧结和浸出,从而得到耐用的催化剂。显然,这种策略不仅指导了用于各种工业化学反应潜在应用的高效多相催化剂的合理设计,而且通过提供新的模型催化剂加速了对催化机理的基本理解。

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