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      Advances in high permeability polymer-based membrane materials for CO2 separations

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          Abstract

          This review summarizes the major advances since 2012 in highly permeable and CO 2-selective polymer-based membrane materials.

          Abstract

          Membrane processes have evolved as a competitive approach in CO 2 separations compared with absorption and adsorption processes, due to their inherent attributes such as energy-saving and continuous operation. High permeability membrane materials are crucial to efficient membrane processes. Among existing membrane materials for CO 2 separations, polymer-based materials have some intrinsic advantages such as good processability, low price and a readily available variety of materials. In recent years, enormous research effort has been devoted to the use of membrane technology for CO 2 separations from diverse sources such as flue gas (mainly N 2), natural gas (mainly CH 4) and syngas (mainly H 2). Polymer-based membrane materials occupy the vast majority of all the membrane materials. For large-scale CO 2 separations, polymer-based membrane materials with high CO 2 permeability and good CO 2/gas selectivity are required. In 2012, we published a Perspective review in Energy & Environmental Science on high permeability polymeric membrane materials for CO 2 separations. Since then, more rapid progress has been made and the research focus has changed significantly. This review summarises the advances since 2012 on high permeability polymer-based membrane materials for CO 2 separations. The major features of this review are reflected in the following three aspects: (1) we cover polymer-based membrane materials instead of purely polymeric membrane materials, which encompass both polymeric membranes and polymer–inorganic hybrid membranes. (2) CO 2 facilitated transport membrane materials are presented. (3) Biomimetism and bioinspired membrane concepts are incorporated. A number of representative examples of recent advances in high permeability polymer-based membrane materials is highlighted with some critical analysis, followed by a brief perspective on future research and development directions.

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          The upper bound revisited

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                Author and article information

                Journal
                EESNBY
                Energy & Environmental Science
                Energy Environ. Sci.
                Royal Society of Chemistry (RSC)
                1754-5692
                1754-5706
                2016
                2016
                : 9
                : 6
                : 1863-1890
                Article
                10.1039/C6EE00811A
                65906774-70b0-49c7-ad97-01c75d99ce73
                © 2016
                History

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