Ultem®/ZIF-8 Mixed Matrix Membranes for Gas Separation: Transport and Physical Properties

Mixed matrix membranes are promising options for improving gas separation processes. Zeolitic imidazolate frameworks (ZIFs) have a porous structure similar to conventional zeolites, being capable in principle of separating gases based on their differences in kinetic diameter while offering the advan...

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Main Authors: Daniel Eiras, Ying Labreche, Luiz Antonio Pessan
Format: Article
Language:English
Published: Associação Brasileira de Metalurgia e Materiais (ABM); Associação Brasileira de Cerâmica (ABC); Associação Brasileira de Polímeros (ABPol) 2016-02-01
Series:Materials Research
Subjects:
Online Access:http://www.scielo.br/scielo.php?script=sci_arttext&pid=S1516-14392016000100220&tlng=en
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author Daniel Eiras
Ying Labreche
Luiz Antonio Pessan
author_facet Daniel Eiras
Ying Labreche
Luiz Antonio Pessan
author_sort Daniel Eiras
collection DOAJ
description Mixed matrix membranes are promising options for improving gas separation processes. Zeolitic imidazolate frameworks (ZIFs) have a porous structure similar to conventional zeolites, being capable in principle of separating gases based on their differences in kinetic diameter while offering the advantage of having a partial organic character. This partial organic nature improves the compatibility between the sieve and the polymer, and a combination of the mentioned characteristics makes these hybrid materials interesting for the preparation of mixed matrix gas separation membranes. In this context the present work reports the preparation of Ultem®/ZIF-8 mixed matrix membranes and their permeabilities to pure CO2, N2 and CH4gases. A significant increase in permeability with increase in CO2/N2 selectivity was observed for the mixed matrix systems as compared to the properties of the neat Ultem®. Sorption results allowed to speculate that the ZIF-8 framework is not completely stable dimensionally, what influences the separation process by allowing gases with higher kinetic diameter than its nominal aperture to be sorbed and to diffuse through the crystal. Sorption and diffusion selectivities indicate that the higher separation performance of the mixed matrix membranes is governed by the diffusion process associated with the influence of gas molecule's geometry.
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publisher Associação Brasileira de Metalurgia e Materiais (ABM); Associação Brasileira de Cerâmica (ABC); Associação Brasileira de Polímeros (ABPol)
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spelling doaj.art-d3f33be5acb24710b787d08e3d2b93372022-12-21T19:22:45ZengAssociação Brasileira de Metalurgia e Materiais (ABM); Associação Brasileira de Cerâmica (ABC); Associação Brasileira de Polímeros (ABPol)Materials Research1516-14392016-02-0119122022810.1590/1980-5373-MR-2015-0621Ultem®/ZIF-8 Mixed Matrix Membranes for Gas Separation: Transport and Physical PropertiesDaniel EirasYing LabrecheLuiz Antonio PessanMixed matrix membranes are promising options for improving gas separation processes. Zeolitic imidazolate frameworks (ZIFs) have a porous structure similar to conventional zeolites, being capable in principle of separating gases based on their differences in kinetic diameter while offering the advantage of having a partial organic character. This partial organic nature improves the compatibility between the sieve and the polymer, and a combination of the mentioned characteristics makes these hybrid materials interesting for the preparation of mixed matrix gas separation membranes. In this context the present work reports the preparation of Ultem®/ZIF-8 mixed matrix membranes and their permeabilities to pure CO2, N2 and CH4gases. A significant increase in permeability with increase in CO2/N2 selectivity was observed for the mixed matrix systems as compared to the properties of the neat Ultem®. Sorption results allowed to speculate that the ZIF-8 framework is not completely stable dimensionally, what influences the separation process by allowing gases with higher kinetic diameter than its nominal aperture to be sorbed and to diffuse through the crystal. Sorption and diffusion selectivities indicate that the higher separation performance of the mixed matrix membranes is governed by the diffusion process associated with the influence of gas molecule's geometry.http://www.scielo.br/scielo.php?script=sci_arttext&pid=S1516-14392016000100220&tlng=enZIF-8mixed matrix membranesGas separationGas permeationGas sorption
spellingShingle Daniel Eiras
Ying Labreche
Luiz Antonio Pessan
Ultem®/ZIF-8 Mixed Matrix Membranes for Gas Separation: Transport and Physical Properties
Materials Research
ZIF-8
mixed matrix membranes
Gas separation
Gas permeation
Gas sorption
title Ultem®/ZIF-8 Mixed Matrix Membranes for Gas Separation: Transport and Physical Properties
title_full Ultem®/ZIF-8 Mixed Matrix Membranes for Gas Separation: Transport and Physical Properties
title_fullStr Ultem®/ZIF-8 Mixed Matrix Membranes for Gas Separation: Transport and Physical Properties
title_full_unstemmed Ultem®/ZIF-8 Mixed Matrix Membranes for Gas Separation: Transport and Physical Properties
title_short Ultem®/ZIF-8 Mixed Matrix Membranes for Gas Separation: Transport and Physical Properties
title_sort ultem r zif 8 mixed matrix membranes for gas separation transport and physical properties
topic ZIF-8
mixed matrix membranes
Gas separation
Gas permeation
Gas sorption
url http://www.scielo.br/scielo.php?script=sci_arttext&pid=S1516-14392016000100220&tlng=en
work_keys_str_mv AT danieleiras ultemzif8mixedmatrixmembranesforgasseparationtransportandphysicalproperties
AT yinglabreche ultemzif8mixedmatrixmembranesforgasseparationtransportandphysicalproperties
AT luizantoniopessan ultemzif8mixedmatrixmembranesforgasseparationtransportandphysicalproperties