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  4. Synthetic Tunability of Colloidal Covalent Organic Framework/Nanocrystal Hybrids
 
research article

Synthetic Tunability of Colloidal Covalent Organic Framework/Nanocrystal Hybrids

Guntern, Yannick T.  
•
Vavra, Jan  
•
Karve, Vikram V.  
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April 13, 2021
Chemistry Of Materials

The combination of porous reticular frameworks and nanocrystals (NCs) offers a rich playground to design materials with functionalities, which are beneficial for a large variety of applications. Achieving compositional and structural tunability of these hybrid platforms is not trivial, and new approaches driven by the understanding of their formation mechanism are needed. Here, we present a synthetic route to encapsulate NCs of various sizes, shapes, and compositions in the microporous imine-linked covalent organic framework (COF) LZU1. The tunable NC@LZU1 core-shell hybrids are synthesized by combining colloidal chemistry and homogeneous microwave-assisted syntheses, an approach that allows tailoring of the shell thickness while ensuring COF crystallinity in the presence of the NCs. The uniform morphologies of these new composite materials along with their colloidal nature enable insights into their formation mechanism. Having learned that the COFs heterogeneously nucleate on the NC seeds, we further expand the synthetic approach by developing a step-by-step encapsulation strategy. Here, we gain control over the spatial distribution of various NCs within multilayered NC@LZU1@Nc@LZU1 core-shell-core-shell hybrids and also form yolk-shell nanostructures. The synthetic route is general and applicable to a broad variety of NCs (with catalytic, magnetic, or optical properties), thus revealing a new way to impart functionalities to COFs.

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Type
research article
DOI
10.1021/acs.chemmater.1c00501
Web of Science ID

WOS:000640650800039

Author(s)
Guntern, Yannick T.  
Vavra, Jan  
Karve, Vikram V.  
Varandili, Seyedeh Behnaz  
Lecina, Ona Segura  
Gadiyar, Chethana  
Buonsanti, Raffaella  
Date Issued

2021-04-13

Published in
Chemistry Of Materials
Volume

33

Issue

7

Start page

2646

End page

2654

Subjects

Chemistry, Physical

•

Materials Science, Multidisciplinary

•

Chemistry

•

Materials Science

•

transmission electron-microscopy

•

methylene-blue

•

catalytic-reduction

•

framework material

•

co2 hydrogenation

•

nanoparticles

•

crystalline

•

chemistry

•

construction

•

nanocrystals

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LNCE  
LFIM  
Available on Infoscience
April 13, 2022
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/178176
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