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Interfacial synthesis of large-area ultrathin polyimine nanofilms as molecular separation membrane.


ABSTRACT: Thin film membranes of covalent organic frameworks are promising for high-permeance molecular separation. However, their synthesis needs a high temperature or longer reaction time, unsuitable for large-scale fabrication of thin film composite membranes. The ultrathin film of porous organic polymers as a separation layer of the composite membrane could be a close alternative to COF membranes. Here we report transition metal ion-catalyzed room temperature fabrication of the ultrathin (≈12 nm) polyimine nanofilms via interfacial polymerization of melamine and triformylphloroglucinol onto hydrolyzed polyacrylonitrile support within a short reaction time. Composite membranes exhibit high water permeance (≈78 L m-2 h-1 bar-1), high rejection (99.6%) of brilliant blue R (825.9 g mol-1), low rejection of NaCl (≈1.8%) and Na2SO4 (≈17%), and enable efficient molecular separation. The role of metal ion catalysts for large-area fabrication of the ultrathin polyimine nanofilm membranes used for molecular separation is demonstrated.

SUBMITTER: Tiwari K 

PROVIDER: S-EPMC8933715 | biostudies-literature | 2022 Apr

REPOSITORIES: biostudies-literature

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Interfacial synthesis of large-area ultrathin polyimine nanofilms as molecular separation membrane.

Tiwari Karishma K   Modak Solagna S   Sarkar Pulak P   Ray Santanu S   Adupa Vasista V   Reddy K Anki KA   Pramanik Sumit Kumar SK   Das Amitava A   Karan Santanu S  

iScience 20220304 4


Thin film membranes of covalent organic frameworks are promising for high-permeance molecular separation. However, their synthesis needs a high temperature or longer reaction time, unsuitable for large-scale fabrication of thin film composite membranes. The ultrathin film of porous organic polymers as a separation layer of the composite membrane could be a close alternative to COF membranes. Here we report transition metal ion-catalyzed room temperature fabrication of the ultrathin (≈12 nm) poly  ...[more]

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