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分子识别驱动下纳米结构MFI片层和MEL针状物形成的见解。

Insight into the Formation of Nanostructured MFI Sheets and MEL Needles Driven by Molecular Recognition.

作者信息

Rohling Roderigh Y, Szyja Bartłomiej M, Hensen Emiel J M

机构信息

Inorganic Materials Chemistry, Department of Chemical Engineering and Catalysis, Eindhoven University of Technology, Den Dolech 2, 5600 MB Eindhoven, The Netherlands.

Division of Fuels Chemistry and Technology, Faculty of Chemistry, Wrocław University of Science and Technology, Gdańska 7/9, 50-344 Wrocław, Poland.

出版信息

J Phys Chem C Nanomater Interfaces. 2019 Mar 7;123(9):5326-5335. doi: 10.1021/acs.jpcc.8b08251. Epub 2019 Feb 13.

Abstract

Mesoporous and nanostructured zeolite-based catalysts experience prolonged lifetimes due to increased mass transfer and reduced micropore obstruction by coke formation as compared to their bulky microporous counterparts. Diquaternary ammonium structure-directing agents (SDAs) can be used to synthesize hierarchical MFI sheet-like and MEL needle-like zeolites. An explanation of the underlying molecular-level details of the synthesis of these nanostructured zeolites is presented on the basis of non-covalent interactions between the template and zeolite surfaces as well as silicate oligomers studied by means of classical molecular dynamics. Use was made of Si and Si silicate oligomers that contain structural features of the framework to be formed as originally proposed by the Leuven group. Molecular recognition is driven by a combination of strong electrostatic and weaker dispersion interactions. An analysis of the early stage of zeolite formation is necessary, as the template adsorption energies in the fully formed zeolite crystals cannot explain the preferential growth of the MFI sheets or MEL needles. Specifically, it is found that the differences in dispersion interactions between the SDA alkyl chains and the silicate oligomers are decisive in the formation of particular zeolite structures.

摘要

与块状微孔沸石相比,介孔和纳米结构的沸石基催化剂由于传质增加以及焦炭形成导致的微孔阻塞减少,因而具有更长的使用寿命。双季铵结构导向剂(SDA)可用于合成分级MFI片状和MEL针状沸石。基于模板与沸石表面之间的非共价相互作用以及通过经典分子动力学研究的硅酸盐低聚物,对这些纳米结构沸石合成的潜在分子水平细节进行了解释。使用了含有如鲁汶小组最初提出的待形成骨架结构特征的硅和硅硅酸盐低聚物。分子识别是由强静电和较弱色散相互作用共同驱动的。对沸石形成的早期阶段进行分析是必要的,因为在完全形成的沸石晶体中模板吸附能无法解释MFI片或MEL针的优先生长。具体而言,发现SDA烷基链与硅酸盐低聚物之间色散相互作用的差异在特定沸石结构的形成中起决定性作用。

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