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Rational approach to guest confinement inside MOF cavities for low-temperature catalysis

机译:合理地将MOF腔内的客体限制在低温催化范围内

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摘要

Geometric or electronic confinement of guests inside nanoporous hosts promises to deliver unusual catalytic or opto-electronic functionality from existing materials but is challenging to obtain particularly using metastable hosts, such as metal–organic frameworks (MOFs). Reagents (e.g. precursor) may be too large for impregnation and synthesis conditions may also destroy the hosts. Here we use thermodynamic Pourbaix diagrams (favorable redox and pH conditions) to describe a general method for metal-compound guest synthesis by rationally selecting reaction agents and conditions. Specifically we demonstrate a MOF-confined RuO2 catalyst (RuO2@MOF-808-P) with exceptionally high catalytic CO oxidation below 150 °C as compared to the conventionally made SiO2-supported RuO2 (RuO2/SiO2). This can be caused by weaker interactions between CO/O and the MOF-encapsulated RuO2 surface thus avoiding adsorption-induced catalytic surface passivation. We further describe applications of the Pourbaix-enabled guest synthesis (PEGS) strategy with tutorial examples for the general synthesis of arbitrary guests (e.g. metals, oxides, hydroxides, sulfides).
机译:纳米多孔主体内部的客体几何或电子约束有望从现有材料中提供非同寻常的催化或光电功能,但尤其是使用亚稳主体(例如金属有机框架(MOF))来获得时,则具有挑战性。试剂(例如前体)可能太大,无法浸渍,合成条件也可能破坏宿主。在这里,我们使用热力学的Pourbaix图(有利的氧化还原和pH条件)来描述通过合理选择反应剂和条件进行金属化合物客体合成的一般方法。具体而言,我们证明了与传统制备的SiO2负载的RuO2(RuO2 / SiO2)相比,MOF限制的RuO2催化剂(RuO2 @ MOF-808-P)在150 C以下具有极高的催化CO氧化。这可能是由于CO / O与MOF封装的RuO2表面之间的相互作用较弱,从而避免了吸附引起的催化表面钝化。我们将通过启用任意客体(例如金属,氧化物,氢氧化物,硫化物)一般合成的教程示例,进一步说明启用Pourbaix的客体合成(PEGS)策略的应用。

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