Highly selective multi-block poly(ether-urea-imide)s for CO2/N2 separation: Structure-morphology-properties relationships

Polyethylene oxide (PEO)-containing multi-block copolymers are good candidates for CO2 membrane separations because of their strong affinity for CO2 but PEO crystallization and weak mechanical properties are two limitations to be overcome at high PEO content. In this work, PEO block incorporation wi...

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Published in:Polymer (Guilford) Vol. 131; pp. 56 - 67
Main Authors: Solimando, Xavier, Babin, Jérôme, Arnal-Herault, Carole, Wang, Miao, Barth, Danielle, Roizard, Denis, Doillon-Halmenschlager, Jean-Raphaël, Ponçot, Marc, Royaud, Isabelle, Alcouffe, Pierre, David, Laurent, Jonquieres, Anne
Format: Journal Article
Language:English
Published: Elsevier Ltd 22-11-2017
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Abstract Polyethylene oxide (PEO)-containing multi-block copolymers are good candidates for CO2 membrane separations because of their strong affinity for CO2 but PEO crystallization and weak mechanical properties are two limitations to be overcome at high PEO content. In this work, PEO block incorporation within new linear multi-block copolymers avoided PEO crystallization. The copolymers consisted in Jeffamine soft blocks (SB) and particularly stiff urea-imide hard blocks for improved physical cross-linking and excellent film-forming ability. Varying the SB content from 41 to 70 wt% led to different copolymer physical properties, morphology and CO2 permeation properties. The copolymer with the lowest SB content was a rigid glassy material with very weak phase separation. Its soft and hard blocks formed large interpenetrated domains, resulting in low CO2 permeability (2 Barrer) but extreme selectivity (αCO2/N2 = 207) for CO2/N2 separation at 2 bar and 35 °C. CO2 permeability greatly improved with the SB content due to strong phase separation. The copolymer with the highest SB content was a thermoplastic elastomer with soft blocks forming well-separated highly permeable percolating nano-domains. Its CO2 permeability (57 Barrer) and high selectivity (αCO2/N2 = 50) are among the best properties reported for PEO-containing multi-block copolymers for CO2 capture. [Display omitted] •PUI multi-block copolymers with PEO-based soft blocks were obtained in high yields.•The PUIs displayed great film-forming ability.•CO2 permeability greatly increased with the soft content due to phase separation.•Permselectivity was easily tuned by varying the soft content from 41 to 70 wt%.•The membranes displayed extremely high to high selectivity for CO2/N2 separation.
AbstractList Polyethylene oxide (PEO)-containing multi-block copolymers are good candidates for CO2 membrane separations because of their strong affinity for CO2 but PEO crystallization and weak mechanical properties are two limitations to be overcome at high PEO content. In this work, PEO block incorporation within new linear multi-block copolymers avoided PEO crystallization. The copolymers consisted in Jeffamine soft blocks (SB) and particularly stiff urea-imide hard blocks for improved physical cross-linking and excellent film-forming ability. Varying the SB content from 41 to 70 wt% led to different copolymer physical properties, morphology and CO2 permeation properties. The copolymer with the lowest SB content was a rigid glassy material with very weak phase separation. Its soft and hard blocks formed large interpenetrated domains, resulting in low CO2 permeability (2 Barrer) but extreme selectivity (αCO2/N2 = 207) for CO2/N2 separation at 2 bar and 35 °C. CO2 permeability greatly improved with the SB content due to strong phase separation. The copolymer with the highest SB content was a thermoplastic elastomer with soft blocks forming well-separated highly permeable percolating nano-domains. Its CO2 permeability (57 Barrer) and high selectivity (αCO2/N2 = 50) are among the best properties reported for PEO-containing multi-block copolymers for CO2 capture. [Display omitted] •PUI multi-block copolymers with PEO-based soft blocks were obtained in high yields.•The PUIs displayed great film-forming ability.•CO2 permeability greatly increased with the soft content due to phase separation.•Permselectivity was easily tuned by varying the soft content from 41 to 70 wt%.•The membranes displayed extremely high to high selectivity for CO2/N2 separation.
Author Solimando, Xavier
Doillon-Halmenschlager, Jean-Raphaël
Babin, Jérôme
Wang, Miao
Barth, Danielle
Alcouffe, Pierre
Jonquieres, Anne
Arnal-Herault, Carole
Royaud, Isabelle
Ponçot, Marc
Roizard, Denis
David, Laurent
Author_xml – sequence: 1
  givenname: Xavier
  surname: Solimando
  fullname: Solimando, Xavier
  organization: Laboratoire de Chimie Physique Macromoléculaire, LCPM UMR CNRS-Université de Lorraine 7375, ENSIC, 1 rue Grandville, BP 20451, 54 001 Nancy Cedex, France
– sequence: 2
  givenname: Jérôme
  surname: Babin
  fullname: Babin, Jérôme
  organization: Laboratoire de Chimie Physique Macromoléculaire, LCPM UMR CNRS-Université de Lorraine 7375, ENSIC, 1 rue Grandville, BP 20451, 54 001 Nancy Cedex, France
– sequence: 3
  givenname: Carole
  surname: Arnal-Herault
  fullname: Arnal-Herault, Carole
  organization: Laboratoire de Chimie Physique Macromoléculaire, LCPM UMR CNRS-Université de Lorraine 7375, ENSIC, 1 rue Grandville, BP 20451, 54 001 Nancy Cedex, France
– sequence: 4
  givenname: Miao
  surname: Wang
  fullname: Wang, Miao
  organization: Laboratoire de Chimie Physique Macromoléculaire, LCPM UMR CNRS-Université de Lorraine 7375, ENSIC, 1 rue Grandville, BP 20451, 54 001 Nancy Cedex, France
– sequence: 5
  givenname: Danielle
  surname: Barth
  fullname: Barth, Danielle
  organization: Laboratoire Réactions et Génie des Procédés, LRGP UMR CNRS-Université de Lorraine 7274, ENSIC, 1 rue Grandville, BP 20451, 54 001 Nancy Cedex, France
– sequence: 6
  givenname: Denis
  surname: Roizard
  fullname: Roizard, Denis
  organization: Laboratoire Réactions et Génie des Procédés, LRGP UMR CNRS-Université de Lorraine 7274, ENSIC, 1 rue Grandville, BP 20451, 54 001 Nancy Cedex, France
– sequence: 7
  givenname: Jean-Raphaël
  surname: Doillon-Halmenschlager
  fullname: Doillon-Halmenschlager, Jean-Raphaël
  organization: Institut Jean Lamour, IJL UMR-CNRS- Université de Lorraine 7198, Parc de Saurupt, Rond-point Marguerite de Lorraine, CS 50840, 54011 Nancy Cedex, France
– sequence: 8
  givenname: Marc
  surname: Ponçot
  fullname: Ponçot, Marc
  organization: Institut Jean Lamour, IJL UMR-CNRS- Université de Lorraine 7198, Parc de Saurupt, Rond-point Marguerite de Lorraine, CS 50840, 54011 Nancy Cedex, France
– sequence: 9
  givenname: Isabelle
  surname: Royaud
  fullname: Royaud, Isabelle
  organization: Institut Jean Lamour, IJL UMR-CNRS- Université de Lorraine 7198, Parc de Saurupt, Rond-point Marguerite de Lorraine, CS 50840, 54011 Nancy Cedex, France
– sequence: 10
  givenname: Pierre
  surname: Alcouffe
  fullname: Alcouffe, Pierre
  organization: Laboratoire IMP@Lyon1, Université Claude Bernard Lyon 1, Univ Lyon, CNRS UMR 5223, 15 Bd. André Latarjet, 69622 Villeurbanne Cedex, France
– sequence: 11
  givenname: Laurent
  surname: David
  fullname: David, Laurent
  organization: Laboratoire IMP@Lyon1, Université Claude Bernard Lyon 1, Univ Lyon, CNRS UMR 5223, 15 Bd. André Latarjet, 69622 Villeurbanne Cedex, France
– sequence: 12
  givenname: Anne
  orcidid: 0000-0002-2842-4193
  surname: Jonquieres
  fullname: Jonquieres, Anne
  email: anne.jonquieres@univ-lorraine.fr
  organization: Laboratoire de Chimie Physique Macromoléculaire, LCPM UMR CNRS-Université de Lorraine 7375, ENSIC, 1 rue Grandville, BP 20451, 54 001 Nancy Cedex, France
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Keywords Hard block reinforcement
Poly(ethylene oxide)
Multi-block copolymers
Phase separation
CO2-selective membranes
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Snippet Polyethylene oxide (PEO)-containing multi-block copolymers are good candidates for CO2 membrane separations because of their strong affinity for CO2 but PEO...
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StartPage 56
SubjectTerms CO2-selective membranes
Hard block reinforcement
Multi-block copolymers
Phase separation
Poly(ethylene oxide)
Title Highly selective multi-block poly(ether-urea-imide)s for CO2/N2 separation: Structure-morphology-properties relationships
URI https://dx.doi.org/10.1016/j.polymer.2017.10.007
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