Alkali Cations Mediated Subnanochannels in MXene Membranes for Enhanced Selective Ion Transport

W Wanglei Xian (Sanya Science and Education Innovation Park of Wuhan University of Technology Sanya China) Y Yunfa Si F Fengxiu Yang Z Zibo Chen (School of Life Sciences) X Xiaodong Ji Z Zhihong Dai C Chenyi Song (Sanya Science and Education Innovation Park of Wuhan University of Technology Sanya China) Y Yijun Cheng (Sanya Science and Education Innovation Park of Wuhan University of Technology Sanya China) B Bo Liu B Baowen Li G Geng Wu (Sanya Science and Education Innovation Park of Wuhan University of Technology) D Daping He (School of Materials Science and Engineering)

Abstract

ABSTRACT Artificial ion nanochannels enabling precise discrimination between monovalent and multivalent cations are essential for resource recovery and ion separation. However, due to the inadequate differentiation of their transmembrane energy barriers, these nanochannels still face challenges in achieving high permeability alongside high selectivity. Herein, we report that a trisodium citrate‐mediated MXene laminar membranes (MLM‐CA‐3Na) possess highly permeable and selective Li + /Ca 2+ separation. As confirmed by aberration‐corrected high‐angle annular dark‐field scanning transmission electron microscopy and X‐ray absorption spectroscopy, the uniform stacking of the citrate ligand/Na + synergistically modified MXene monolayer nanosheets has achieved highly ordered confined subnanochannels of MLM‐CA‐3Na membranes. Molecular dynamics simulations, potential of mean force calculations, and transport energy barrier analysis revealed that the confined subnanochannels of MLM‐CA‐3Na membranes efficiently regulate the dehydration and transport behaviors of Li + and Ca 2+ , leading to a pronounced differentiation in their transmembrane energy barriers. The obtained MLM‐CA‐3Na membranes exhibited a Li + permeation rate of 0.0725 mol m −2 h −1 , a Li + / Ca 2+ selectivity of 84, and long‐term durability over 100 h. This work identifies ligand‐cation interactions as key regulators for ion separation, providing a design paradigm for sustainable lithium extraction.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 02, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (12)

W

Wanglei Xian

Sanya Science and Education Innovation Park of Wuhan University of Technology Sanya China

Y

Yunfa Si

F

Fengxiu Yang

Z

Zibo Chen

School of Life Sciences

X

Xiaodong Ji

Z

Zhihong Dai

C

Chenyi Song

Sanya Science and Education Innovation Park of Wuhan University of Technology Sanya China

Y

Yijun Cheng

Sanya Science and Education Innovation Park of Wuhan University of Technology Sanya China

B

Bo Liu

B

Baowen Li

G

Geng Wu

Sanya Science and Education Innovation Park of Wuhan University of Technology

D

Daping He

School of Materials Science and Engineering