Can crosslinking improve both CO2 permeability and plasticization resistance in 6FDA–pBAPS/DABA copolyimides?

Marcel Balçık, Sadiye Velioğlu*, S. Birgül Tantekin-Ersolmaz, M. Göktuğ Ahunbay*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

16 Citations (Scopus)

Abstract

In membrane-based CO2 separation, glassy polymeric materials suffer from plasticization phenomenon. To suppress plasticization, cross-linking is a possible remedy, which however alters the separation performance significantly. This study investigates the effect of crosslinking on the CO2 transport properties and plasticization resistance of 2,2′-bis-(3,4-dicarboxyphenyl) hexafuoropropane dianhydride - bis [4-(4-aminophenoxy) phenyl] sulfone/3,5-diaminobenzoic acid (6FDA-pBAPS/DABA) copolyimide using molecular modeling and simulation tools that integrate quantum level calculations with Molecular Dynamics (MD) and Monte Carlo (MC) simulations. Mimicking the thermal crosslinking procedure, 25, 50, 75, and 100% crosslinked copolyimide structures are constructed for sorption and diffusion simulations and compared with the uncrosslinked polymer. The increased glass transition temperature of the polymers with crosslinking density confirms enhanced rigidity due to crosslinking, which reduces the packing efficiency of polymer chains and leads to higher fractional free volume, hence increasing the CO2 diffusivity. Analyses of CO2-accessible free volume evolution as a function of pressure show increased plasticization resistance with crosslinking. However, radial distribution function analyses indicate that crosslinking reduces the number of preferential sorption sites for CO2 molecules and prevents also the expansion of free volume elements around these sites. Consequently, CO2 solubility of the polymers decreases while diffusivity increases with increasing crosslinking density. This study reveals that the resultant effect of thermal crosslinking on 6FDA-pBAPS/DABA copolyimide is an increase in both CO2 permeability and plasticization resistance, which are the most desirable properties in CO2 separation applications.

Original languageEnglish
Article number122789
JournalPolymer
Volume205
DOIs
Publication statusPublished - 28 Sept 2020

Bibliographical note

Publisher Copyright:
© 2020 Elsevier Ltd

Funding

This work was supported by the Scientific Projects Unit of Istanbul Technical University (Grant# MDK- 2018-41400 ). Computing resources used in this work were provided by the National Center for High Performance Computing of Turkey (UHeM) under grant# 1003032013 . The authors gratefully acknowledge Professor William J. Koros for stimulating discussion on crosslinking and its effect on plasticization. The changes in density, FFV and Tg of 6FDA-pBAPS/DABA (1:1) as a function of crosslinking ratio are presented in Table 3. The constructed models for 6FDA-pBAPS/DABA (1:1) copolyimides are labeled as C11-X throughout this manuscript, where the identifier “X” indicates the crosslinking ratio (0%, “uncrosslinked”, to 100%). With increasing crosslinking ratio, FFV increases from 0.144 (uncrosslinked copolyimide) to 0.163 (fully crosslinked copolyimide) due to the formation of a more rigid and less packed structure, which is coherent with the increase of Tg. Since our simulation procedure corresponds to the thermal crosslinking process with rapid quenching, the increase in FFV with the crosslinking is expected [11, 13–15]. PVT diagrams used in Tg predictions are given in Fig. S1 of Supporting Information (SI).This work was supported by the Scientific Projects Unit of Istanbul Technical University (Grant# MDK-2018-41400). Computing resources used in this work were provided by the National Center for High Performance Computing of Turkey (UHeM) under grant# 1003032013. The authors gratefully acknowledge Professor William J. Koros for stimulating discussion on crosslinking and its effect on plasticization.

FundersFunder number
National Center for High Performance Computing of Turkey
Ulusal Yüksek Başarımlı Hesaplama Merkezi, Istanbul Teknik Üniversitesi1003032013
Istanbul Teknik ÜniversitesiMDK- 2018-41400

    Keywords

    • Copolyimide
    • Membrane-based gas separation
    • Molecular simulation

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