Perfluoropolymer/Molecular Sieve Mixed-Matrix Membranes

Despite the outstanding chemical, thermal and transport properties of amorphous and glassy perfluorinated polymers, only few works exist on the preparation and transport properties of perfluoropolymer/molecular sieves mixed-matrix membranes (MMMs), probably because of their poor compatibility. In th...

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Main Authors: Gianni Golemme, Anna Santaniello
Format: Article
Language:English
Published: MDPI AG 2019-01-01
Series:Membranes
Subjects:
Online Access:https://www.mdpi.com/2077-0375/9/2/19
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spelling doaj-35d01358b7a047cf92207696d95af0962020-11-24T21:47:59ZengMDPI AGMembranes2077-03752019-01-01921910.3390/membranes9020019membranes9020019Perfluoropolymer/Molecular Sieve Mixed-Matrix MembranesGianni Golemme0Anna Santaniello1Department of Environmental and Chemical Engineering, University of Calabria, Via P. Bucci 45 A, 87036 Rende, ItalyPhysics Department, University of Calabria, Via P. Bucci 22 C, 87036 Rende, ItalyDespite the outstanding chemical, thermal and transport properties of amorphous and glassy perfluorinated polymers, only few works exist on the preparation and transport properties of perfluoropolymer/molecular sieves mixed-matrix membranes (MMMs), probably because of their poor compatibility. In this review, the compatibilization of ceramic molecular sieves with perfluorinated matrices is considered first, examining the effect of the surface treatment on the gas transport properties of the filler. Then the preparation of the defect-free hybrid membranes and their gas separation capabilities are described. Finally, recent modelling of the gas transport properties of the perfluoropolymer MMMs is reviewed. The systematic use of molecular sieves of different size and shape, either permeable or impermeable, and the calculation of the bulk transport properties of the molecular sieves—i.e., the unrestricted diffusion and permeability—allow to understand the nature of the physical phenomena at work in the MMMs, that is the larger the perfluoropolymer fractional free volume at the interface, and restricted diffusion at the molecular sieves. This knowledge led to the formulation of a new four-phase approach for the modelling of gas transport. The four-phase approach was implemented in the frame of the Maxwell model and also for the finite element simulation. The four-phase approach is a convenient representation of the transport in MMMs when more than one single interfacial effect is present.https://www.mdpi.com/2077-0375/9/2/19glassy amorphous perfluoropolymersmixed matrix membraneszeolitic molecular sievesgas separationinterfacial compatibilizationfractional free volumerestricted diffusionbarriers to mass transportfour phases Maxwell modelfinite element modelling of transport
collection DOAJ
language English
format Article
sources DOAJ
author Gianni Golemme
Anna Santaniello
spellingShingle Gianni Golemme
Anna Santaniello
Perfluoropolymer/Molecular Sieve Mixed-Matrix Membranes
Membranes
glassy amorphous perfluoropolymers
mixed matrix membranes
zeolitic molecular sieves
gas separation
interfacial compatibilization
fractional free volume
restricted diffusion
barriers to mass transport
four phases Maxwell model
finite element modelling of transport
author_facet Gianni Golemme
Anna Santaniello
author_sort Gianni Golemme
title Perfluoropolymer/Molecular Sieve Mixed-Matrix Membranes
title_short Perfluoropolymer/Molecular Sieve Mixed-Matrix Membranes
title_full Perfluoropolymer/Molecular Sieve Mixed-Matrix Membranes
title_fullStr Perfluoropolymer/Molecular Sieve Mixed-Matrix Membranes
title_full_unstemmed Perfluoropolymer/Molecular Sieve Mixed-Matrix Membranes
title_sort perfluoropolymer/molecular sieve mixed-matrix membranes
publisher MDPI AG
series Membranes
issn 2077-0375
publishDate 2019-01-01
description Despite the outstanding chemical, thermal and transport properties of amorphous and glassy perfluorinated polymers, only few works exist on the preparation and transport properties of perfluoropolymer/molecular sieves mixed-matrix membranes (MMMs), probably because of their poor compatibility. In this review, the compatibilization of ceramic molecular sieves with perfluorinated matrices is considered first, examining the effect of the surface treatment on the gas transport properties of the filler. Then the preparation of the defect-free hybrid membranes and their gas separation capabilities are described. Finally, recent modelling of the gas transport properties of the perfluoropolymer MMMs is reviewed. The systematic use of molecular sieves of different size and shape, either permeable or impermeable, and the calculation of the bulk transport properties of the molecular sieves—i.e., the unrestricted diffusion and permeability—allow to understand the nature of the physical phenomena at work in the MMMs, that is the larger the perfluoropolymer fractional free volume at the interface, and restricted diffusion at the molecular sieves. This knowledge led to the formulation of a new four-phase approach for the modelling of gas transport. The four-phase approach was implemented in the frame of the Maxwell model and also for the finite element simulation. The four-phase approach is a convenient representation of the transport in MMMs when more than one single interfacial effect is present.
topic glassy amorphous perfluoropolymers
mixed matrix membranes
zeolitic molecular sieves
gas separation
interfacial compatibilization
fractional free volume
restricted diffusion
barriers to mass transport
four phases Maxwell model
finite element modelling of transport
url https://www.mdpi.com/2077-0375/9/2/19
work_keys_str_mv AT giannigolemme perfluoropolymermolecularsievemixedmatrixmembranes
AT annasantaniello perfluoropolymermolecularsievemixedmatrixmembranes
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