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Electro-controlled angstrom-scale membrane channels and ion dehydration for tunable ion and molecule separations.

Source: PubMed, NCBI / U.S. National Library of Medicine

Water researchZhang Haiguang, Li Qian, Dong Xiaoqing, et al.Published 8/1/2026Last synced 8/8/2026Status: syncedPMID: 42566956DOI: 10.1016/j.watres.2026.126612

Membranes with tunable, selective separation properties are promising candidates for complex water/wastewater treatment and sustainable resource recovery. However, conventional membranes with fixed structures lack pore/channel adjustability and separation adaptability, making it extremely challenging to achieve angstrom-scale tunable and selective separation. Here, we report an electro-controlled MXene@polyaniline-poly(styrenesulfonate) membrane that enables precise regulation of angstrom‑scale channels and ionic dehydration, thereby achieving selective separations of mono- and di-valent salts and organic molecules. Applying a negative bias (0 - 2.5 V, membrane cathode) induces Nato undergo dehydration and embed into the polyaniline network, causing polymer chain deformation and enabling tunable membrane channel size between 5.6 Å and 10.3 Å. This electro-regulation endows the membrane with permeation selectivities of 30.4 for NaCl/NaSOand 216-904 for salt/dye and salt/antibiotic, while their retention selectivities reach 196-312, significantly outperforming previously reported membranes. Theoretical calculations and simulations reveal that NaCl/NaSOseparation arises primarily from the preferential dehydration and permeation of Clover SOat a pore size of 7.1 Å (1.5 V). In contrast, salt/molecule separation relies on molecular steric hindrance to retain large molecules and ionic dehydration to permit salt p

Abstract

Membranes with tunable, selective separation properties are promising candidates for complex water/wastewater treatment and sustainable resource recovery. However, conventional membranes with fixed structures lack pore/channel adjustability and separation adaptability, making it extremely challenging to achieve angstrom-scale tunable and selective separation. Here, we report an electro-controlled MXene@polyaniline-poly(styrenesulfonate) membrane that enables precise regulation of angstrom‑scale channels and ionic dehydration, thereby achieving selective separations of mono- and di-valent salts and organic molecules. Applying a negative bias (0 - 2.5 V, membrane cathode) induces Nato undergo dehydration and embed into the polyaniline network, causing polymer chain deformation and enabling tunable membrane channel size between 5.6 Å and 10.3 Å. This electro-regulation endows the membrane with permeation selectivities of 30.4 for NaCl/NaSOand 216-904 for salt/dye and salt/antibiotic, while their retention selectivities reach 196-312, significantly outperforming previously reported membranes. Theoretical calculations and simulations reveal that NaCl/NaSOseparation arises primarily from the preferential dehydration and permeation of Clover SOat a pore size of 7.1 Å (1.5 V). In contrast, salt/molecule separation relies on molecular steric hindrance to retain large molecules and ionic dehydration to permit salt permeation at a larger pore size of 10.3 Å (2.5 V). This study provides new insights for the development of smart membranes for fine separation and resource-based water treatment.

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