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Catalysis by metallic nanoparticles in solution: thermosensitive microgels as nanoreactors

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Title: Catalysis by metallic nanoparticles in solution: thermosensitive microgels as nanoreactors
Authors: Roa, R
Angioletti-Uberti, S
Lu, Y
Dzubiella, J
Piazza, F
Ballauff, M
Item Type: Journal Article
Abstract: Metallic nanoparticles have been used as catalysts for various reactions, and the huge literature on the subject is hard to overlook. In many applications, the nanoparticles must be affixed to a colloidal carrier for easy handling during catalysis. These "passive carriers" (e.g. dendrimers) serve for a controlled synthesis of the nanoparticles and prevent coagulation during catalysis. Recently, hybrids from nanoparticles and polymers have been developed that allow us to change the catalytic activity of the nanoparticles by external triggers. In particular, single nanoparticles embedded in a thermosensitive network made from poly(N-isopropylacrylamide) (PNIPAM) have become the most-studied examples of such hybrids: immersed in cold water, the PNIPAM network is hydrophilic and fully swollen. In this state, hydrophilic substrates can diffuse easily through the network, and react at the surface of the nanoparticles. Above the volume transition located at 32°C, the network becomes hydrophobic and shrinks. Now hydrophobic substrates will preferably diffuse through the network and react with other substrates in the reaction catalyzed by the enclosed nanoparticle. Such "active carriers", may thus be viewed as true nanoreactors that open new ways for the use of nanoparticles in catalysis. In this review, we give a survey on recent work done on these hybrids and their application in catalysis. The aim of this review is threefold: we first review hybrid systems composed of nanoparticles and thermosensitive networks and compare these "active carriers" to other colloidal and polymeric carriers (e.g. dendrimers). In a second step we discuss the model reactions used to obtain precise kinetic data on the catalytic activity of nanoparticles in various carriers and environments. These kinetic data allow us to present a fully quantitative comparison of different nanoreactors. In a final section we shall present the salient points of recent efforts in the theoretical modeling of these nanoreactors. By accounting for the presence of a free-energy landscape for the reactants' diffusive approach towards the catalytic nanoparticle, arising from solvent-reactant and polymeric shell-reactant interactions, these models are capable of explaining the emergence of all the important features observed so far in studies of nanoreactors. The present survey also suggests that such models may be used for the design of future carrier systems adapted to a given reaction and solvent.
Issue Date: 1-May-2018
Date of Acceptance: 5-Mar-2018
URI: http://hdl.handle.net/10044/1/59009
DOI: https://doi.org/10.1515/zpch-2017-1078
ISSN: 0942-9352
Publisher: De Gruyter
Start Page: 773
End Page: 803
Journal / Book Title: Zeitschrift fur Physikalische Chemie
Volume: 232
Issue: 5-6
Copyright Statement: © 2018 Walter de Gruyter GmbH, Berlin/Boston 2018.
Keywords: Science & Technology
Physical Sciences
Chemistry, Physical
Chemistry
catalysis
metal nanoparticles
nanoreactor
reduction
thermosensitive network
SPHERICAL POLYELECTROLYTE BRUSHES
DENDRIMER-ENCAPSULATED NANOPARTICLES
CORE-SHELL PARTICLES
GOLD NANOPARTICLES
PALLADIUM NANOPARTICLES
PLATINUM NANOPARTICLES
4-NITROPHENOL REDUCTION
PD NANOPARTICLES
RESPONSIVE NANOREACTORS
NITROPHENOL REDUCTION
Chemical Physics
0306 Physical Chemistry (incl. Structural)
0307 Theoretical and Computational Chemistry
Publication Status: Published
Online Publication Date: 2018-03-13
Appears in Collections:Materials
Faculty of Engineering