Achieving high permeability and enhanced selectivity for Angstrom-scale separations using artificial water channel membranes.

Shen, Yue-Xiao; Song, Woochul; Barden, D Ryan; Ren, Tingwei; Lang, Chao; Feroz, Hasin; Henderson, Codey B; Saboe, Patrick O et al. · Nat Commun · 2018

basic_science · Level V

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Abstract

Synthetic polymer membranes, critical to diverse energy-efficient separations, are subject to permeability-selectivity trade-offs that decrease their overall efficacy. These trade-offs are due to structural variations (e.g., broad pore size distributions) in both nonporous membranes used for Angstrom-scale separations and porous membranes used for nano to micron-scale separations. Biological membranes utilize well-defined Angstrom-scale pores to provide exceptional transport properties and can be used as inspiration to overcome this trade-off. Here, we present a comprehensive demonstration of such a bioinspired approach based on pillar[5]arene artificial water channels, resulting in artificial water channel-based block copolymer membranes. These membranes have a sharp selectivity profile with a molecular weight cutoff of ~ 500 Da, a size range challenging to achieve with current membranes, while achieving a large improvement in permeability (~65 L m<sup>-2</sup> h<sup>-1</sup> bar<sup>-1</sup> compared with 4-7 L m<sup>-2</sup> h<sup>-1</sup> bar<sup>-1</sup>) over similarly rated commercial membranes.

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