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Synthetic azobenzene-containing metal-organic framework ion channels toward efficient light-gated ion transport at the subnanoscale

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posted on 2024-11-02, 20:39 authored by Tianyue Qian, Chen ZhaoChen Zhao, Ruoxin Wang, Xiaofang Chen, Jue Hou, Huanting Wang, Huacheng ZhangHuacheng Zhang
Artificial nanochannels with diverse responsive properties have been widely developed to replicate the smart gating functionalities of biological ion channels. However, in these traditional nanochannels, common responsive molecules are usually too small to efficiently block the large channels under the closed states, leading to weak gating performances. Herein, we report carboxylated azobenzene-coordinated metal-organic-framework (AZO-MOF) ion channels with impressive light-gating properties. The AZO-MOF ion channels were synthesized by the confined growth of AZO-MOFs, composed of light-responsive AZO-containing ligands, non-responsive ligands and metal clusters, into ion-track-etched polymer nanochannels. The AZO-MOF ion channels with an appropriate number of AZO ligands showed a well-maintained crystalline and three-dimensional porous structure, including nanoscale cavities and subnanoscale windows for LiCl conduction. Meanwhile, the AZO-containing ligands bend and stretch upon light irradiation to open and close the pathways, thus gating the ion flux through the AZO-MOF ion channels with high on-off ratios up to 40.2, which is ∼2.3-30 times those of AZO-encapsulated MOF ion channels and AZO-modified nanochannels. This work suggests ways to achieve subnanoscaled gating of ion transport by angstrom-porous MOFs coordinated by stimuli-responsive ligands. This journal is

Funding

Structurally-bridged crystalline molecular sieve-polymer membranes

Australian Research Council

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Engineered ion channels for selective and switchable ion conduction

Australian Research Council

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Bioinspired Ion Transporters for Efficient Energy Conversion and Storage

Australian Research Council

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History

Related Materials

  1. 1.
    DOI - Is published in 10.1039/d1nr04595d
  2. 2.
    ISSN - Is published in 20403364

Journal

Nanoscale

Volume

13

Issue

41

Start page

17396

End page

17403

Total pages

8

Publisher

Royal Society of Chemistry

Place published

United Kingdom

Language

English

Copyright

This journal is © The Royal Society of Chemistry 2021

Former Identifier

2006115755

Esploro creation date

2022-06-03

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