An integrated materials approach to ultrapermeable and ultraselective CO<sub>2</sub> polymer membranes.

Sandru, Marius; Sandru, Eugenia M; Ingram, Wade F; Deng, Jing; Stenstad, Per M; Deng, Liyuan; Spontak, Richard J · Science · 2022

basic_science · Level V

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Abstract

Advances in membrane technologies that combine greatly improved carbon dioxide (CO<sub>2</sub>) separation efficacy with low costs, facile fabrication, feasible upscaling, and mechanical robustness are needed to help mitigate global climate change. We introduce a hybrid-integrated membrane strategy wherein a high-permeability thin film is chemically functionalized with a patchy CO<sub>2</sub>-philic grafted chain surface layer. A high-solubility mechanism enriches the concentration of CO<sub>2</sub> in the surface layer hydrated by water vapor naturally present in target gas streams, followed by fast CO<sub>2</sub> transport through a highly permeable (but low-selectivity) polymer substrate. Analytical methods confirm the existence of an amine surface layer. Integrated multilayer membranes prepared in this way are not diffusion limited and retain much of their high CO<sub>2</sub> permeability, and their CO<sub>2</sub> selectivity is concurrently increased in some cases by more than ~150-fold.