Multifunctional intercalants create stable subnanochannels in MoS2 membranes for wastewater treatment

H Hao Zhang M Ming Yong T Ting Hu (BNLMS, College of Chemistry and Molecular Engineering) Y Yuan Kang (Department of Chemical and Biological Engineering) Z Zhuyuan Wang (UQ Dow Centre for Sustainable Engineering Innovation, School of Chemical Engineering) Z Zhonghao Xu X Xuefeng Li X Xin Sun L Lijun Guo F Fangmeng Sheng X Xiangkang Zeng Z Zhikao Li X Xingya Li (Department of Medical Oncology, First Affiliated Hospital of Zhengzhou University, Zhengzhou, China) H Huanting Wang (Department of Chemical and Biological Engineering) T Tongwen Xu X Xiwang Zhang (UQ Dow Centre for Sustainable Engineering Innovation, School of Chemical Engineering)

Abstract

Abstract MoS2 nanosheets, featuring high chemical and mechanical stability, offer immense promise as building blocks for high-performance two-dimensional (2D) membranes. However, engineering these membranes to achieve tailored channel dimensions and chemistry while maintaining sufficient stability remains a significant challenge, impeding their real-world applications. Herein, we demonstrate the multifunctionality of polymeric quaternary ammoniums as intercalants in MoS2 membranes, enabling the creation of selective, stable 2D subnanochannels in MoS2 membranes. These intercalants fulfil three key roles: they define and secure the channel width at ~5 Å without disrupting the channel order, impart substantial positive charges to regulate the microenvironment within the channel, and establish strong non-covalent interactions with the electron-rich MoS2 planes to stabilize the channels. Consequently, the resulting membranes exhibit superior stability across various aqueous environments, particularly showing excellent tolerance under highly acidic (1 M H2SO4) conditions. During harsh pressure-driven crossflow operations, the membranes demonstrate fast water permeation while maintaining high rejection (> 90%) and selectivity for heavy metal ions in acidic wastewater. This strategy of leveraging multifunctional intercalants offers critical insights for the design of task-specific 2D membranes for demanding applications.

Article Details

Volume / Issue Vol. 16, Issue 1
Published September 24, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (16)

H

Hao Zhang

M

Ming Yong

T

Ting Hu

BNLMS, College of Chemistry and Molecular Engineering

Y

Yuan Kang

Department of Chemical and Biological Engineering

Z

Zhuyuan Wang

UQ Dow Centre for Sustainable Engineering Innovation, School of Chemical Engineering

Z

Zhonghao Xu

X

Xuefeng Li

X

Xin Sun

L

Lijun Guo

F

Fangmeng Sheng

X

Xiangkang Zeng

Z

Zhikao Li

X

Xingya Li

Department of Medical Oncology, First Affiliated Hospital of Zhengzhou University, Zhengzhou, China

H

Huanting Wang

Department of Chemical and Biological Engineering

T

Tongwen Xu

X

Xiwang Zhang

UQ Dow Centre for Sustainable Engineering Innovation, School of Chemical Engineering