Please use this identifier to cite or link to this item: https://doi.org/10.1038/s41467-018-06828-4
Title: Lewis basicity generated by localised charge imbalance in noble metal nanoparticle-embedded defective metal–organic frameworks
Authors: Tan, Y.C 
Zeng, H.C 
Keywords: carboxylic acid
cerium
cobalt
cupric ion
Lewis base
lithium ion
manganese
metal nanoparticle
metal organic framework
nanocomposite
nickel
potassium ion
sodium ion
catalysis
catalyst
ion exchange
metal
nanocomposite
nanoparticle
organometallic compound
performance assessment
Article
cation exchange
Knoevenagel condensation
nanocatalysis
nanocatalyst
nanoengineering
oxidation
particle size
transmission electron microscopy
X ray photoemission spectroscopy
Issue Date: 2018
Publisher: Nature Publishing Group
Citation: Tan, Y.C, Zeng, H.C (2018). Lewis basicity generated by localised charge imbalance in noble metal nanoparticle-embedded defective metal–organic frameworks. Nature Communications 9 (1) : 4326. ScholarBank@NUS Repository. https://doi.org/10.1038/s41467-018-06828-4
Abstract: Interactions between metal nanoparticles (NPs) and metal–organic frameworks (MOFs) in their composite forms have proven to exhibit beneficial properties, such as enhanced catalytic performance through synergistic effects. Herein, we show that Lewis basic sites can be created within an anionic defective MOF by engineering the electronic state of the pendant carboxylate groups situated at the defect sites. This is achieved from the concerted interactions between the pendant carboxylate groups, embedded Pd NPs and charge-balancing cations (M n+ = Ce 3+ , Co 2+ , Ni 2+ , Cu 2+ , Mg 2+ , Li + , Na + or K + ). This work is the first example of generating a new collective property, i.e. Lewis basicity, in metal-carboxylate MOFs. Importantly, the choice of M n+ , used during cation exchange, acts as a convenient parameter to tune the Lewis basicity of the MOF-based nanocomposites. It also provides a facile way to incorporate active metal sites and basic sites within carboxylate-based MOFs to engineer multifunctional nanocatalysts. © 2018, The Author(s).
Source Title: Nature Communications
URI: https://scholarbank.nus.edu.sg/handle/10635/174200
ISSN: 2041-1723
DOI: 10.1038/s41467-018-06828-4
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