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用于高温催化的沸石中亚纳米级铂簇的区域选择性生成及反应性控制

Regioselective generation and reactivity control of subnanometric platinum clusters in zeolites for high-temperature catalysis.

作者信息

Liu Lichen, Lopez-Haro Miguel, Lopes Christian W, Li Chengeng, Concepcion Patricia, Simonelli Laura, Calvino Jose J, Corma Avelino

机构信息

Instituto de Tecnología Química, Universitat Politècnica de València-Consejo Superior de Investigaciones Científicas, Valencia, Spain.

Departamento de Ciencia de los Materiales e Ingeniería Metalúrgica y Química Inorgánica, Facultad de Ciencias, Universidad de Cádiz, Cádiz, Spain.

出版信息

Nat Mater. 2019 Aug;18(8):866-873. doi: 10.1038/s41563-019-0412-6. Epub 2019 Jul 1.

Abstract

Subnanometric metal species (single atoms and clusters) have been demonstrated to be unique compared with their nanoparticulate counterparts. However, the poor stabilization of subnanometric metal species towards sintering at high temperature (>500 °C) under oxidative or reductive reaction conditions limits their catalytic application. Zeolites can serve as an ideal support to stabilize subnanometric metal catalysts, but it is challenging to localize subnanometric metal species on specific sites and modulate their reactivity. We have achieved a very high preference for localization of highly stable subnanometric Pt and PtSn clusters in the sinusoidal channels of purely siliceous MFI zeolite, as revealed by atomically resolved electron microscopy combining high-angle annular dark-field and integrated differential phase contrast imaging techniques. These catalysts show very high stability, selectivity and activity for the industrially important dehydrogenation of propane to form propylene. This stabilization strategy could be extended to other crystalline porous materials.

摘要

与纳米颗粒相比,亚纳米级金属物种(单原子和团簇)已被证明具有独特性。然而,在氧化或还原反应条件下,亚纳米级金属物种在高温(>500°C)下对烧结的稳定性较差,限制了它们的催化应用。沸石可以作为稳定亚纳米级金属催化剂的理想载体,但将亚纳米级金属物种定位在特定位置并调节其反应性具有挑战性。通过结合高角度环形暗场和积分微分相衬成像技术的原子分辨电子显微镜揭示,我们已经实现了将高度稳定的亚纳米级Pt和PtSn团簇高度优先地定位在纯硅MFI沸石的正弦通道中。这些催化剂对丙烷工业上重要的脱氢生成丙烯反应表现出非常高的稳定性、选择性和活性。这种稳定策略可以扩展到其他结晶多孔材料。

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