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  4. Understanding Your Support System: The Design of a Stable Metal-Organic Framework/Polyazoamine Support for Biomass Conversion
 
research article

Understanding Your Support System: The Design of a Stable Metal-Organic Framework/Polyazoamine Support for Biomass Conversion

Karve, Vikram V.  
•
Nekrasova, Nadezhda A.
•
Asgari, Mehrdad  
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November 4, 2022
Chemistry Of Materials

Introducing oligomeric or polymeric units into metal- organic frameworks (MOFs) can result in composites that have significantly improved properties when compared with the individual MOF or polymer building blocks. With such synergy in mind, this work presents the design of a novel MOF/polyazoamine support that is used to stabilize Pd nanoparticles (NPs). The resulting composite catalyst, tested in the reductive amination of levulinic acid, is found to have a markedly improved lifetime when compared to just the MOF or polymer support containing Pd. It is demonstrated, for the first time, that the lifetime enhancement stems directly from the polymer, which plays a dual role: (i) the oligomer stabilizes the MOF support through the elimination of certain vibrational modes associated with the framework ligand and likely pore-filling effects in the largest MOF pore and (ii) the Lewis base functionality on the oligomer backbone binds to the surface of the Pd NPs, thus, increasing their activity and inhibiting their aggregation. Several complementary spectroscopic (IR, X-ray photoelectron spectroscopy, Raman spectroscopy) and computational tools (pore space and topology analysis, molecular mechanics, and density functional theory simulations) are used to describe the nature of the MOF-oligomer interaction and identify the most likely location of the polymer within the MOF pore.

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Type
research article
DOI
10.1021/acs.chemmater.2c01731
Web of Science ID

WOS:000882971300001

Author(s)
Karve, Vikram V.  
Nekrasova, Nadezhda A.
Asgari, Mehrdad  
Trukhina, Olga  
Kochetygov, Ilia, V  
Abedini, Hassan
Yang, Shuliang  
Alexandrov, Eugeny, V
Luterbacher, Jeremy S.  
Queen, Wendy L.  
Date Issued

2022-11-04

Publisher

AMER CHEMICAL SOC

Published in
Chemistry Of Materials
Subjects

Chemistry, Physical

•

Materials Science, Multidisciplinary

•

Chemistry

•

Materials Science

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total-energy calculations

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reductive amination

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frameworks

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catalysts

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polymers

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co2

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heterogenization

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nanoparticles

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chemistry

•

database

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

Available on Infoscience
December 5, 2022
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/192977
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