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  4. Catalytic Ionic-Liquid Membranes: The Convergence of Ionic-Liquid Catalysis and Ionic-Liquid Membrane Separation Technologies
 
research article

Catalytic Ionic-Liquid Membranes: The Convergence of Ionic-Liquid Catalysis and Ionic-Liquid Membrane Separation Technologies

Izak, Pavel
•
Bobbink, Felix D.
•
Hulla, Martin
Show more
2018
Chempluschem

Membrane technologies enable the facile separation of complex mixtures of gases, vapours, liquids and/or solids under mild conditions. Simultaneous chemical transformations can also be achieved in membranes by using catalytically active membrane materials or embedded catalysts, in so-called membrane reactors. A particular class of membranes containing or composed of ionic liquids (ILs) or polymeric ionic liquids (pILs) have recently emerged. These membranes often exhibit superior transport and separation properties to those of classical polymeric membranes. ILs and pILs have also been extensively studied as separation solvents, catalysts and co-catalysts in similar applications for which membranes are employed. In this review, after introducing ILs and their applications in catalysis, catalytic membranes and recent advances in membrane separation processes based on ILs are described. Finally, the nascent concept of catalytic IL membranes is highlighted, in which catalytically active ILs/pILs are incorporated into membrane technologies to act as a catalytic separation layer.

  • Details
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Type
research article
DOI
10.1002/cplu.201700293
Web of Science ID

WOS:000423765300002

Author(s)
Izak, Pavel
Bobbink, Felix D.
Hulla, Martin
Klepic, Martina
Friess, Karel
Hovorka, Stepan
Dyson, Paul J.
Date Issued

2018

Published in
Chempluschem
Volume

83

Issue

1

Start page

7

End page

18

Subjects

heterogeneous catalysis

•

ionic liquids

•

membranes

•

polymers

•

separation processes

•

asymmetric michael addition

•

aqueous-phase hydrogenation

•

fluoropolymer gel membrane

•

diels-alder reaction

•

core-shell catalyst

•

room-temperature

•

carbon-dioxide

•

poly(ionic liquid)s

•

selective hydrogenation

•

pd nanoparticles

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LCOM  
Available on Infoscience
July 11, 2018
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/147221
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