Haiguang Zhang, Qian Li, Xiaoqing Dong, Gaoliang Wei, Jiajian Xing, Runzeng Liu, Qingzhe Zhang, Youcai Zhu, Shuo Chen, Jianchao Wang, Yong Cai, Xie Quan
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 Na+ to 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/Na2SO4 and 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/Na2SO4 separation arises primarily from the preferential dehydration and permeation of Cl- over SO42- at 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.