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Encapsulation of ultrafine metal-oxide nanoparticles within mesopores for biomass-derived catalytic applications

机译:超细金属氧化物纳米粒子在中孔中的包封用于生物质衍生的催化应用

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摘要

The development of efficient encapsulation strategies has attracted intense interest for preparing highly active and stable heterogeneous metal catalysts. However, issues related to low loadings, costly precursors and complex synthesis processes restrict their potential applications. Herein, we report a novel and general strategy to encapsulate various ultrafine metal-oxides nanoparticles (NPs) into the mesoporous KIT-6. The synthesis is facile, which only involves self-assembly of a metal–organic framework (MOF) precursor in the silica mesopores and a subsequent calcination process to transform the MOF into metal-oxide NPs. After the controlled calcination, the metal-oxide NPs produced from MOF decomposition are exclusively confined and uniformly distributed in the mesopores of KIT-6 with high metal loadings. Benefitting from the encapsulation effects, as-synthesized Co@KIT-6 materials exhibit superior catalytic activity and recycling stability in biomass-derived HMF oxidation under mild reaction conditions.
机译:高效封装策略的发展引起了人们对制备高活性和稳定的多相金属催化剂的浓厚兴趣。但是,与低负荷,昂贵的前体和复杂的合成工艺有关的问题限制了它们的潜在应用。在这里,我们报告了一种新颖的通用策略,将各种超细金属氧化物纳米颗粒(NPs)封装到中孔KIT-6中。合成很容易,仅涉及在二氧化硅介孔中自组装金属有机骨架(MOF)前体和随后的煅烧过程,即可将MOF转化为金属氧化物NP。在受控的煅烧之后,由MOF分解产生的金属氧化物NPs被专门限制并均匀地分布在高金属负载的KIT-6的中孔中。得益于封装效果,合成的Co @ KIT-6材料在温和的反应条件下,在生物质衍生的HMF氧化中表现出优异的催化活性和循环稳定性。

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