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Review
. 2021 Mar;5(3):168-182.
doi: 10.1038/s41570-020-00246-1. Epub 2021 Jan 27.

Metal-organic cages for molecular separations

Affiliations
Review

Metal-organic cages for molecular separations

Dawei Zhang et al. Nat Rev Chem. 2021 Mar.

Abstract

Separation technology is central to industries as diverse as petroleum, pharmaceuticals, mining and life sciences. Metal-organic cages, a class of molecular containers formed via coordination-driven self-assembly, show great promise as separation agents. Precise control of the shape, size and functionalization of cage cavities enables them to selectively bind and distinguish a wide scope of physicochemically similar substances in solution. Extensive research has, thus, been performed involving separations of high-value targets using coordination cages, ranging from gases and liquids to compounds dissolved in solution. Enantiopure capsules also show great potential for the separation of chiral molecules. The use of crystalline cages as absorbents, or the incorporation of cages into polymer membranes, could increase the selectivity and efficiency of separation processes. This Review covers recent progress in using metal-organic cages to achieve separations, with discussion of the many methods of using them in this context. Challenges and potential future developments are also discussed.

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References

    1. Sholl, D. S. & Lively, R. P. Seven chemical separations to change the world. Nature 532, 435–437 (2016). - PubMed - DOI
    1. Park, H. B. et al. Polymers with cavities tuned for fast selective transport of small molecules and ions. Science 318, 254–258 (2007). - PubMed - DOI
    1. McKeown, N. B. & Budd, P. M. Polymers of intrinsic microporosity (PIMs): organic materials for membrane separations, heterogeneous catalysis and hydrogen storage. Chem. Soc. Rev. 35, 675–683 (2006). - PubMed - DOI
    1. Jie, K., Zhou, Y., Li, E. & Huang, F. Nonporous adaptive crystals of pillararenes. Acc. Chem. Res. 51, 2064–2072 (2018). - PubMed - DOI
    1. Surwade, S. P. et al. Water desalination using nanoporous single-layer graphene. Nat. Nanotechnol. 10, 459–464 (2015). - PubMed - DOI

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