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. 2023 Oct 2;62(40):e202310393.
doi: 10.1002/anie.202310393. Epub 2023 Aug 25.

Anion-(π)n -π Catalytic Micelles

Affiliations

Anion-(π)n -π Catalytic Micelles

Mei-Ling Tan et al. Angew Chem Int Ed Engl. .

Abstract

Anion-π catalysis operates by stabilizing anionic transition states on π-acidic aromatic surfaces. In anion-(π)n -π catalysis, π stacks add polarizability to strengthen interactions. In search of synthetic methods to extend π stacks beyond the limits of foldamers, the self-assembly of micelles from amphiphilic naphthalenediimides (NDIs) is introduced. To interface substrates and catalysts, charge-transfer complexes with dialkoxynaphthalenes (DANs), a classic in supramolecular chemistry, are installed. In π-stacked micelles, the rates of bioinspired ether cyclizations exceed rates on monomers in organic solvents by far. This is particularly impressive considering that anion-π catalysis in water has been elusive so far. Increasing rates with increasing π acidity of the micelles evince operational anion-(π)n -π catalysis. At maximal π acidity, autocatalytic behavior emerges. Dependence on position and order in confined micellar space promises access to emergent properties. Anion-(π)n -π catalytic micelles in water thus expand supramolecular systems catalysis accessible with anion-π interactions with an inspiring topic of general interest and great perspectives.

Keywords: Anion-π Catalysis; Micellar Catalysis; Noncovalent Interactions; Supramolecular Catalysis; Systems Catalysis.

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References

    1. Y. Zhao, Y. Cotelle, L. Liu, J. López-Andarias, A.-B. Bornhof, M. Akamatsu, N. Sakai, S. Matile, Acc. Chem. Res. 2018, 51, 2255-2263.
    1. N. Luo, Y.-F. Ao, D.-X. Wang, Q.-Q. Wang, Chem. Eur. J. 2022, 28, e202103303.
    1. N. Luo, Y.-F. Ao, D.-X. Wang, Q.-Q. Wang, Angew. Chem. Int. Ed. 2021, 60, 20650-20655.
    1. J. R. J. Maynard, B. Galmés, A. D. Stergiou, M. D. Symes, A. Frontera, S. M. Goldup, Angew. Chem. Int. Ed. 2022, 61, e202115961.
    1. N. Luo, Y.-F. Ao, D.-X. Wang, Q.-Q. Wang, Chem. Asian J. 2021, 16, 3599-3603.

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