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March 21, 2026ACS Applied Polymer Materials0 citations

Promoting CO 2 Separation Performances in Copolymeric Membranes via Chemical Structure and Microstructure Rearrangement

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WLWeiyuan LiangXWXinyu WangJGJundong Guo

Key Points

  • This work aims to enhance the gas separation performance of copolymeric membranes through structural and microstructural adjustments.
  • Synthesis of copolymers using dibenzofuran and dibenzo-18-crown-6 via Friedel–Crafts reaction.
  • Investigation of the effect of monomer ratios on gas separation.
  • Grafting of glycidyl trimethylammonium chloride onto the copolymer backbone.
  • Application of non-solvent-induced microstructure rearrangement (MSR) to the copolymer membrane.
  • Achieved CO2 permeability of 1222.8 Barrer and CO2/N2 selectivity of 41.71 under optimized conditions.
  • Demonstrated improvements of 3.1 times in CO2 permeability and 3.9 times in selectivity compared to original membranes.
  • The P(O–F0.5–C0.5)-GTA 2 wt % GlyK MSR membrane demonstrated excellent stability.

Abstract

Regulating the microstructure and gas transport pathways is one of the strategies to achieve efficient gas separation. In this work, copolymers were synthesized using dibenzofuran and dibenzo-18-crown-6 via the Friedel–Crafts reaction. The influence of the monomer ratio on the gas separation was first investigated. Subsequently, glycidyl trimethylammonium chloride was grafted onto the copolymer backbone. Afterward, non-solvent-induced microstructure rearrangement (MSR) was applied to the copolymer membrane. Results reveal that the MSR process significantly improved the gas separation performance of the membranes. Under optimized conditions, a CO2 permeability of 1222.8 Barrer and a CO2/N2 selectivity of 41.71 were achieved, showing an improvement of 3.1 and 3.9 times compared to the original membranes. In addition, the P(O–F0.5–C0.5)-GTA 2 wt % GlyK MSR membrane also exhibited excellent stability. This study demonstrates that both chemically regulating the polymer structure and physically inducing MSR can improve gas separation performance, providing insights into the molecular design of high-performance gas-separation membranes.

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Cite This Study

Liang et al. (2026) studied this question.

synapsesocial.com/papers/69be35946e48c4981c673fb3https://doi.org/10.1021/acsapm.6c00178
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