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Solvent-Influenced Fragmentations in Free-Standing Three-Dimensional Covalent Organic Framework Membranes for Hydrophobicity Switching.


ABSTRACT: The ordered open organic frameworks membranes are attractive candidates for flow-assisted molecular separations. The physicochemical properties of such membranes mostly depend on their selectively chosen functional building blocks. In this work, we have introduced a novel concept of functional switchability of three-dimensional covalent organic framework (3D-COF) membranes through a simple solvent-influenced fragmentation method. This room-temperature interfacial synthesis provides free-standing 3D-COF membranes with distinct physicochemical properties from the same building monomers. Notably, the change of solvent from chloroform to ethyl acetate switches the membrane property from hydrophilic (water contact angle 60°) to hydrophobic (water contact angle 142°) nature. The hydrophobic 3D-COF membrane selectively passes oil molecules from an oil-water emulsion with a gravitational flux of 1536 L m-2  h-1 .

SUBMITTER: Mohammed AK 

PROVIDER: S-EPMC9303774 | biostudies-literature | 2022 Mar

REPOSITORIES: biostudies-literature

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Solvent-Influenced Fragmentations in Free-Standing Three-Dimensional Covalent Organic Framework Membranes for Hydrophobicity Switching.

Mohammed Abdul Khayum AK   Al Khoori Ayesha A AA   Addicoat Matthew A MA   Varghese Sabu S   Othman Israa I   Jaoude Maguy Abi MA   Polychronopoulou Kyriaki K   Baias Maria M   Haija Mohammad Abu MA   Shetty Dinesh D  

Angewandte Chemie (International ed. in English) 20220219 13


The ordered open organic frameworks membranes are attractive candidates for flow-assisted molecular separations. The physicochemical properties of such membranes mostly depend on their selectively chosen functional building blocks. In this work, we have introduced a novel concept of functional switchability of three-dimensional covalent organic framework (3D-COF) membranes through a simple solvent-influenced fragmentation method. This room-temperature interfacial synthesis provides free-standing  ...[more]

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