Biomimetic NaK Channel Membrane Enabled by a Crown Ether‐Coordinated Metal–Organic Framework

C Chen Zhao N Na Li S Sijia Shi (Department of Chemical and Environmental Engineering RMIT University Melbourne VIC 3000 Australia) J Jue Hou (Department of Applied Chemistry and Environmental Science RMIT University Melbourne VIC 3000 Australia) L Li Gao B Benny D. Freeman (Department of Chemical Engineering The University of Texas at Austin Austin TX USA) H Huanting Wang (Department of Chemical and Biological Engineering) H Huacheng Zhang

Abstract

Abstract Biological NaK channels integrate exquisite ion selectivity with dynamic gating to regulate life processes, yet achieving such multifunctionality in synthetic channels has remained a formidable challenge. Here, we present a metal–organic framework (MOF) channel membrane that combines two complementary ion‐conduction motifs: carboxyl groups from UiO‐66‐COOH and carboxybenzo‐15‐crown‐5 (15C5‐COOH), assembled in a one‐step coordination strategy. This hybrid architecture recapitulates essential NaK channel functions, offering both ultrahigh ion selectivity and controllable gating. The membrane enables highly selective conduction of monovalent cations while effectively excluding Mg 2+ , yielding M + /Mg 2+ selectivity above 10 2 . Under mixed‐ion conditions, it achieves unprecedented Na⁺/K⁺ selectivity exceeding 10 3 , far surpassing reported artificial ion channels. Remarkably, Mg 2+ ions dynamically gate Na⁺ and K⁺ transport with sustainable on–off ratios around 30. These outstanding performances arise from the synergistic interplay of crown ether and carboxyl groups confined within subnanometer MOF pores. This work establishes a versatile strategy for designing multifunctional artificial ion channels, opening avenues toward advanced ionic devices for artificial cells and biomedical technologies.

Article Details

Volume / Issue Vol. 65, Issue 7
Published February 09, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

C

Chen Zhao

N

Na Li

S

Sijia Shi

Department of Chemical and Environmental Engineering RMIT University Melbourne VIC 3000 Australia

J

Jue Hou

Department of Applied Chemistry and Environmental Science RMIT University Melbourne VIC 3000 Australia

L

Li Gao

B

Benny D. Freeman

Department of Chemical Engineering The University of Texas at Austin Austin TX USA

H

Huanting Wang

Department of Chemical and Biological Engineering

H

Huacheng Zhang