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Tuning UV Absorption in Imine-Linked Covalent Organic Frameworks via Methylation

  • Ellen Dautzenberg
  • , Milena Lam
  • , Tatiana Nikolaeva
  • , Wouter M.J. Franssen
  • , Barend van Lagen
  • , Ilse P.A.M. Gerrits-Benneheij
  • , Nikolay Kosinov
  • , Guanna Li
  • , Louis C.P.M. de Smet (Corresponding author)

    Research output: Contribution to journalArticleAcademicpeer-review

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    Abstract

    Covalent organic frameworks (COFs) are porous materials with high surface areas, making them interesting for a large variety of applications including energy storage, gas separation, photocatalysis, and chemical sensing. Structural variation plays an important role in tuning COF properties. Next to the type of the building block core, bonding directionality, and linking chemistry, substitution of building blocks provides another level of synthetic control. Thorough characterization and comparison of various substitution patterns is relevant for the molecular engineering of COFs via rational design. To this end, we have systematically synthesized and characterized multiple combinations of several methylated and non-methylated building blocks to obtain a series of imine-based COFs. This includes the experimental assignment of the COF structure by solid-state NMR. By comparing the properties of all COFs, the following trends were found: (1) upon methylation of the aldehyde nodes, COFs show increased Brunauer-Emmett-Teller surface areas, reduced pore collapse, blue-shifted absorbance spectra, and ∼0.2 eV increases in their optical band gaps. (2) COFs with dimethylated amine linkers show a lower porosity. (3) In tetramethylated amine linkers, the COF porosity even further decreases, the absorbance spectra are clearly red-shifted, and smaller optical band gaps are obtained. Our study shows that methyl substitution patterns on COF building blocks are a handle to control the UV absorbance of the resulting frameworks.

    Original languageEnglish
    Pages (from-to)21338-21347
    Number of pages10
    JournalJournal of Physical Chemistry C
    Volume126
    Issue number50
    DOIs
    Publication statusPublished - 22 Dec 2022

    Bibliographical note

    Funding Information:
    This work was supported by the Dutch Research Council (NWO, START-UP grant 740.018.004, to L.C.P.M.d.S.). The authors thank Rob Koehorst and Julian Engelhardt for technical assistance and Prof. Han Zuilhof, Dr. Fedor Miloserdov, and Cor Wolfs for fruitful discussions regarding material synthesis and characterization. The authors also thank Prof. Harry Bitter for providing access to nitrogen sorption measurements. The authors would like to thank the anonymous referees for their valuable suggestions and comments on an earlier version of this article.

    Funding

    This work was supported by the Dutch Research Council (NWO, START-UP grant 740.018.004, to L.C.P.M.d.S.). The authors thank Rob Koehorst and Julian Engelhardt for technical assistance and Prof. Han Zuilhof, Dr. Fedor Miloserdov, and Cor Wolfs for fruitful discussions regarding material synthesis and characterization. The authors also thank Prof. Harry Bitter for providing access to nitrogen sorption measurements. The authors would like to thank the anonymous referees for their valuable suggestions and comments on an earlier version of this article.

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