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Electrostatic-modulated interfacial polymerization toward ultra-permselective nanofiltration membranes

Interfacial polymerization (IP) is a platform technology for ultrathin membranes. However, most efforts in regulating the IP process have been focused on short-range H-bond interaction, often leading to low-permselective membranes. Herein, we report an electrostatic-modulated interfacial polymerizat...

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Autores principales: You, Xinda, Xiao, Ke, Wu, Hong, Li, Yafei, Li, Runlai, Yuan, Jinqiu, Zhang, Runnan, Zhang, Zhiming, Liang, Xu, Shen, Jianliang, Jiang, Zhongyi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8059057/
https://www.ncbi.nlm.nih.gov/pubmed/33898951
http://dx.doi.org/10.1016/j.isci.2021.102369
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author You, Xinda
Xiao, Ke
Wu, Hong
Li, Yafei
Li, Runlai
Yuan, Jinqiu
Zhang, Runnan
Zhang, Zhiming
Liang, Xu
Shen, Jianliang
Jiang, Zhongyi
author_facet You, Xinda
Xiao, Ke
Wu, Hong
Li, Yafei
Li, Runlai
Yuan, Jinqiu
Zhang, Runnan
Zhang, Zhiming
Liang, Xu
Shen, Jianliang
Jiang, Zhongyi
author_sort You, Xinda
collection PubMed
description Interfacial polymerization (IP) is a platform technology for ultrathin membranes. However, most efforts in regulating the IP process have been focused on short-range H-bond interaction, often leading to low-permselective membranes. Herein, we report an electrostatic-modulated interfacial polymerization (eIP) via supercharged phosphate-rich substrates toward ultra-permselective polyamide membranes. Phytate, a natural strongly charged organophosphate, confers high-density long-range electrostatic attraction to aqueous monomers and affords tunable charge density by flexible metal-organophosphate coordination. The electrostatic attraction spatially enriches amine monomers and temporally decelerates their diffusion into organic phase to be polymerized with acyl chloride monomers, triggering membrane sealing and inhibiting membrane growth, thus generating polyamide membranes with reduced thickness and enhanced cross-linking. The optimized nearly 10-nm-thick and highly cross-linked polyamide membrane displays superior water permeance and ionic selectivity. This eIP approach is applicable to the majority of conventional IP processes and can be extended to fabricate a variety of advanced membranes from polymers, supermolecules, and organic framework materials.
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spelling pubmed-80590572021-04-23 Electrostatic-modulated interfacial polymerization toward ultra-permselective nanofiltration membranes You, Xinda Xiao, Ke Wu, Hong Li, Yafei Li, Runlai Yuan, Jinqiu Zhang, Runnan Zhang, Zhiming Liang, Xu Shen, Jianliang Jiang, Zhongyi iScience Article Interfacial polymerization (IP) is a platform technology for ultrathin membranes. However, most efforts in regulating the IP process have been focused on short-range H-bond interaction, often leading to low-permselective membranes. Herein, we report an electrostatic-modulated interfacial polymerization (eIP) via supercharged phosphate-rich substrates toward ultra-permselective polyamide membranes. Phytate, a natural strongly charged organophosphate, confers high-density long-range electrostatic attraction to aqueous monomers and affords tunable charge density by flexible metal-organophosphate coordination. The electrostatic attraction spatially enriches amine monomers and temporally decelerates their diffusion into organic phase to be polymerized with acyl chloride monomers, triggering membrane sealing and inhibiting membrane growth, thus generating polyamide membranes with reduced thickness and enhanced cross-linking. The optimized nearly 10-nm-thick and highly cross-linked polyamide membrane displays superior water permeance and ionic selectivity. This eIP approach is applicable to the majority of conventional IP processes and can be extended to fabricate a variety of advanced membranes from polymers, supermolecules, and organic framework materials. Elsevier 2021-03-26 /pmc/articles/PMC8059057/ /pubmed/33898951 http://dx.doi.org/10.1016/j.isci.2021.102369 Text en © 2021 The Author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
You, Xinda
Xiao, Ke
Wu, Hong
Li, Yafei
Li, Runlai
Yuan, Jinqiu
Zhang, Runnan
Zhang, Zhiming
Liang, Xu
Shen, Jianliang
Jiang, Zhongyi
Electrostatic-modulated interfacial polymerization toward ultra-permselective nanofiltration membranes
title Electrostatic-modulated interfacial polymerization toward ultra-permselective nanofiltration membranes
title_full Electrostatic-modulated interfacial polymerization toward ultra-permselective nanofiltration membranes
title_fullStr Electrostatic-modulated interfacial polymerization toward ultra-permselective nanofiltration membranes
title_full_unstemmed Electrostatic-modulated interfacial polymerization toward ultra-permselective nanofiltration membranes
title_short Electrostatic-modulated interfacial polymerization toward ultra-permselective nanofiltration membranes
title_sort electrostatic-modulated interfacial polymerization toward ultra-permselective nanofiltration membranes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8059057/
https://www.ncbi.nlm.nih.gov/pubmed/33898951
http://dx.doi.org/10.1016/j.isci.2021.102369
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