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- Title
Regulation of molecular transport in polymer membranes with voltage-controlled pore size at the angstrom scale.
- Authors
Zhu, Yuzhang; Gui, Liangliang; Wang, Ruoyu; Wang, Yunfeng; Fang, Wangxi; Elimelech, Menachem; Lin, Shihong; Jin, Jian
- Abstract
Polymer membranes have been used extensively for Angstrom-scale separation of solutes and molecules. However, the pore size of most polymer membranes has been considered an intrinsic membrane property that cannot be adjusted in operation by applied stimuli. In this work, we show that the pore size of an electrically conductive polyamide membrane can be modulated by an applied voltage in the presence of electrolyte via a mechanism called electrically induced osmotic swelling. Under applied voltage, the highly charged polyamide layer concentrates counter ions in the polymer network via Donnan equilibrium and creates a sizeable osmotic pressure to enlarge the free volume and the effective pore size. The relation between membrane potential and pore size can be quantitatively described using the extended Flory-Rehner theory with Donnan equilibrium. The ability to regulate pore size via applied voltage enables operando modulation of precise molecular separation in-situ. This study demonstrates the amazing capability of electro-regulation of membrane pore size at the Angstrom scale and unveils an important but previously overlooked mechanism of membrane-water-solute interactions. The ability to regulate membrane pore size as needed has been a topic of active research for developing next-generation stimuli-responsive smart membranes. Herein, the authors report the observation of operando regulation of the pore size of A membrane based on electro-osmotic swelling.
- Subjects
POLYMERIC membranes; BIOLOGICAL transport; OSMOTIC pressure; POLYAMIDE membranes; MEMBRANE potential; POLYAMIDES; POLYMER networks; POLYMERS
- Publication
Nature Communications, 2023, Vol 14, Issue 1, p1
- ISSN
2041-1723
- Publication type
Article
- DOI
10.1038/s41467-023-38114-3