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Spatially orthogonal chemical functionalization of a hierarchical pore network for catalytic cascade reactions

journal contribution
posted on 2024-11-02, 06:19 authored by Christopher Parlett, Mark Isaacs, Simon Beaumont, Laura Bingham, Nicole Hondow, Karen Wilson, Adam Lee
The chemical functionality within porous architectures dictates their performance as heterogeneous catalysts(1); however, synthetic routes to control the spatial distribution of individual functions within porous solids are limited. Here we report the fabrication of spatially orthogonal bifunctional porous catalysts, through the stepwise template removal and chemical functionalization of an interconnected silica framework. Selective removal of polystyrene nanosphere templates from a lyotropic liquid crystal-templated silica sol-gel matrix, followed by extraction of the liquid crystal template, affords a hierarchical macroporous-mesoporous architecture. Decoupling of the individual template extractions allows independent functionalization of macropore and mesopore networks on the basis of chemical and/or size specificity. Spatial compartmentalization of, and directed molecular transport between, chemical functionalities affords control over the reaction sequence in catalytic cascades(2,3); herein illustrated by the Pd/Pt-catalysed oxidation of cinnamyl alcohol to cinnamic acid. We anticipate that our methodology will prompt further design of multifunctional materials(4-6) comprising spatially compartmentalized functions.

History

Journal

Nature Materials

Volume

15

Issue

2

Start page

178

End page

182

Total pages

5

Publisher

Nature

Place published

United Kingdom

Language

English

Copyright

© 2016 Macmillan Publishers Limited. All rights reserved.

Former Identifier

2006083329

Esploro creation date

2020-06-22

Fedora creation date

2018-09-20

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