High‐Efficiency Ion Transport in Ultrathin 3D Covalent Organic Framework Nanofluidics

H Haoyang Ling (Laboratory of Bio-inspired Smart Interface Science) Q Qingchen Wang Z Zidi Yan (Laboratory of Bio-inspired Smart Interface Science, Technical Institute of Physics and Chemistry) X Xuanze Li (Laboratory of Photochemical Conversion and Optoelectronic Materials) K Kehan Zou (Laboratory of Bio-inspired Smart Interface Science, Technical Institute of Physics and Chemistry) Y Yaoxu He (Laboratory of Bio-inspired Smart Interface Science, Technical Institute of Physics and Chemistry) K Ke Li Y Yanglansen Cui (State Key Laboratory of Bioinspired Interfacial Materials Science,Suzhou Institute for Advanced Research University of Science and Technology of China Suzhou Jiangsu 215123 P.R. China) T Tianchi Liu (Laboratory of Bio-inspired Smart Interface Science) W Weipeng Chen H Huaqing Du (Laboratory of Bio‐inspired Smart Interface Science Technical Institute of Physics and Chemistry Chinese Academy of Sciences Beijing 100190 P.R. China) Y Yang Liu W Weiwen Xin (Laboratory of Bio-Inspired Smart Interface Science) X Xiang‐Yu Kong (Laboratory of Bio‐Inspired Smart Interface Science Technical Institute of Physics and Chemistry Beijing P.R. China) L Lei Jiang L Liping Wen (Laboratory of Bio-inspired Smart Interface Science, Technical Institute of Physics and Chemistry)

Abstract

Abstract High‐efficiency ion transport is essential for both biological and nonbiological processes, including the regulation of cell homeostasis, energy conversion, and mass transfer in chemical industry. Nanofluidic channels are considered ideal platforms for delicate control of ion transport in their unique nanoconfinement, yet currently reported 1D and 2D nanofluidics are subjected to elevated transport resistance due to discontinuous and random channels. Here, we engineer ultrathin, 3D covalent organic framework (3D‐COF) nanofluidics featuring continuously interpenetrated pathways and well‐ordered pore arrangements, demonstrating superior ion conductance. The energy barrier for ion transport across 3D‐COF nanofluidics is exceptionally low, suggesting ultrafast and low‐resistance ion movements. Theoretical calculations indicate that 3D‐COF nanofluidics facilitate group adsorption to anions, leading to high energy barriers for anion mobility, thus enhancing ion selectivity and high‐throughput cation transport. In osmotic energy applications, 3D‐COF nanofluidics achieve a power density of 217.7 W m −2 with artificial seawater and river water, potentially scalable to 1238.2 W m −2 under a 500‐fold salinity gradient. The proposed 3D‐COF nanofluidics offer new avenues for desalination and ion/molecular separation.

Article Details

Volume / Issue Vol. 64, Issue 24
Published June 10, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (16)

H

Haoyang Ling

Laboratory of Bio-inspired Smart Interface Science

Q

Qingchen Wang

Z

Zidi Yan

Laboratory of Bio-inspired Smart Interface Science, Technical Institute of Physics and Chemistry

X

Xuanze Li

Laboratory of Photochemical Conversion and Optoelectronic Materials

K

Kehan Zou

Laboratory of Bio-inspired Smart Interface Science, Technical Institute of Physics and Chemistry

Y

Yaoxu He

Laboratory of Bio-inspired Smart Interface Science, Technical Institute of Physics and Chemistry

K

Ke Li

Y

Yanglansen Cui

State Key Laboratory of Bioinspired Interfacial Materials Science,Suzhou Institute for Advanced Research University of Science and Technology of China Suzhou Jiangsu 215123 P.R. China

T

Tianchi Liu

Laboratory of Bio-inspired Smart Interface Science

W

Weipeng Chen

H

Huaqing Du

Laboratory of Bio‐inspired Smart Interface Science Technical Institute of Physics and Chemistry Chinese Academy of Sciences Beijing 100190 P.R. China

Y

Yang Liu

W

Weiwen Xin

Laboratory of Bio-Inspired Smart Interface Science

X

Xiang‐Yu Kong

Laboratory of Bio‐Inspired Smart Interface Science Technical Institute of Physics and Chemistry Beijing P.R. China

L

Lei Jiang

L

Liping Wen

Laboratory of Bio-inspired Smart Interface Science, Technical Institute of Physics and Chemistry