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Sulfonated Sub-1-nm Metal-Organic Framework Channels with Ultrahigh Proton Selectivity

journal contribution
posted on 2024-11-02, 17:54 authored by Xingya Li, Huacheng ZhangHuacheng Zhang, Jue Hou, Ranwen Ou, Yinlong Zhu, Chen Zhao, Tianyue Qian, Christopher Easton, Cordelia Selomulya, Matthew Hill, Huanting Wang
Biological proton channels are sub-1-nm protein pores with ultrahigh proton (H+) selectivity over other ions. Inspired by biological proton channels, developing artificial proton channels with biological-level selectivity is of fundamental significance for separation science. Herein we report synthetic proton channels fabrication based on sulfonated metal-organic frameworks (MOFs), UiO-66-X, X = SAG, NH-SAG, (NH-SAG)2 (SAG: sulfonic acid groups), which have sub-1-nm windows and a high density of sulfonic acid groups mimicking natural proton channels. The ion conductance of UiO-66-X channels follows the sequence: H+ ≫ K+ > Na+> Li+, and the sulfonated UiO-66 derivative channels show proton selectivity much higher than that of the pristine UiO-66 channels. Particularly, the UiO-66-(NH-SAG)2 channels exhibit ultrahigh proton selectivities, H+/Li+ up to ∼100, H+/Na+ of ∼80, and H+/K+ of ∼70, which are ∼3 times of that of UiO-66-NH-SAG channels, and ∼15 times of that of UiO-66@SAG channels. The ultrahigh proton selectivity in the sulfonated sub-1-nm MOF channels is mainly attributed to the narrow window-cavity pore structure functionalized with nanoconfined high-density sulfonic acid groups that facilitate fast proton transport and simultaneously exclude other cations. Our work opens an avenue to develop functional MOF channels for selective ion conduction and efficient ion separation.

Funding

Self-gating nanochannels for nanofluidic applications

Australian Research Council

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Engineered ion channels for selective and switchable ion conduction

Australian Research Council

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History

Related Materials

  1. 1.
    DOI - Is published in 10.1021/jacs.0c03554
  2. 2.
    ISSN - Is published in 00027863

Journal

Journal of the American Chemical Society

Volume

142

Issue

21

Start page

9827

End page

9833

Total pages

7

Publisher

American Chemical Society

Place published

United States

Language

English

Copyright

© 2020 American Chemical Society

Former Identifier

2006110209

Esploro creation date

2021-10-30

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