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Molecular imprinting of bulk, microporous silica

Author

Listed:
  • Alexander Katz

    (Chemical Engineering, California Institute of Technology
    University of California)

  • Mark E. Davis

    (Chemical Engineering, California Institute of Technology)

Abstract

Molecular imprinting aims to create solid materials containing chemical functionalities that are spatially organized by covalent1 or non-covalent2 interactions with imprint (or template) molecules during the synthesis process. Subsequent removal of the imprint molecules leaves behind designed sites for the recognition of small molecules, making the material ideally suited for applications such as separations, chemical sensing and catalysis2,3,4,5. Until now, the molecular imprinting of bulk polymers2,3,4,5 and polymer6,7 and silica8,9 surfaces has been reported, but the extension of these methods to a wider range of materials remains problematic. For example, the formation of substrate-specific cavities within bulk silica, while conceptually straightforward10, has been difficult to accomplish experimentally11,12. Here we describe the imprinting of bulk amorphous silicas with single aromatic rings carrying up to three 3-aminopropyltriethoxysilane side groups; this generates and occupies microporosity and attaches functional organic groups to the pore walls in a controlled fashion. The triethoxysilane part of the molecules’ side groups is incorporated into the silica framework during sol–gel synthesis, and subsequent removal of the aromatic core creates a cavity with spatially organized aminopropyl groups covalently anchored to the pore walls. We find that the imprinted silicas act as shape-selective base catalysts. Our strategy can be extended to imprint other functional groups, which should give access to a wide range of functionalized materials.

Suggested Citation

  • Alexander Katz & Mark E. Davis, 2000. "Molecular imprinting of bulk, microporous silica," Nature, Nature, vol. 403(6767), pages 286-289, January.
  • Handle: RePEc:nat:nature:v:403:y:2000:i:6767:d:10.1038_35002032
    DOI: 10.1038/35002032
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    Cited by:

    1. Pau Ferri & Chengeng Li & Daniel Schwalbe-Koda & Mingrou Xie & Manuel Moliner & Rafael Gómez-Bombarelli & Mercedes Boronat & Avelino Corma, 2023. "Approaching enzymatic catalysis with zeolites or how to select one reaction mechanism competing with others," Nature Communications, Nature, vol. 14(1), pages 1-13, December.

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