| Literature DB >> 35087238 |
Jiadong Xiao1,2, Kang Cheng3, Xiaobin Xie4,5, Mengheng Wang3, Shiyou Xing1, Yuanshuai Liu1,6, Thomas Hartman1, Donglong Fu1,7, Koen Bossers1, Marijn A van Huis4, Alfons van Blaaderen4, Ye Wang8, Bert M Weckhuysen9.
Abstract
Metal-zeolite composites with metal (oxide) and acid sites are promising catalysts for integrating multiple reactions in tandem to produce a wide variety of wanted products without separating or purifying the intermediates. However, the conventional design of such materials often leads to uncontrolled and non-ideal spatial distributions of the metal inside/on the zeolites, limiting their catalytic performance. Here we demonstrate a simple strategy for synthesizing double-shelled, contiguous metal oxide@zeolite hollow spheres (denoted as MO@ZEO DSHSs) with controllable structural parameters and chemical compositions. This involves the self-assembly of zeolite nanocrystals onto the surface of metal ion-containing carbon spheres followed by calcination and zeolite growth steps. The step-by-step formation mechanism of the material is revealed using mainly in situ Raman spectroscopy and X-ray diffraction and ex situ electron microscopy. We demonstrate that it is due to this structure that an Fe2O3@H-ZSM-5 DSHSs-showcase catalyst exhibits superior performance compared with various conventionally structured Fe2O3-H-ZSM-5 catalysts in gasoline production by the Fischer-Tropsch synthesis. This work is expected to advance the rational synthesis and research of hierarchically hollow, core-shell, multifunctional catalyst materials.Entities:
Year: 2022 PMID: 35087238 DOI: 10.1038/s41563-021-01183-0
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841