Issue 47, 2018

Chlorine-functionalized keto-enamine-based covalent organic frameworks for CO2 separation and capture

Abstract

We report highly chemically and thermally stable chlorine-functionalized CAA-COF-1 and CAA-COF-2. The chlorine-functionalized COFs exhibited enhanced CO2 uptake (by ∼28–44%) in comparison with their pristine COF analogues (TpPa-1 and TpBd). Column breakthrough experiments reveal that CAA-COF-1 and CAA-COF-2 display a high CO2/N2 (10/90) gas mixture selectivity of 95 and 54, respectively. Additionally, CAA-COF-1 exhibits a CO2/CH4 (10/90) column breakthrough selectivity of 29.

Graphical abstract: Chlorine-functionalized keto-enamine-based covalent organic frameworks for CO2 separation and capture

Supplementary files

Article information

Article type
Communication
Submitted
19 Aug 2018
Accepted
18 Sep 2018
First published
05 Oct 2018

CrystEngComm, 2018,20, 7621-7625

Chlorine-functionalized keto-enamine-based covalent organic frameworks for CO2 separation and capture

D. B. Shinde, M. Ostwal, X. Wang, A. M. Hengne, Y. Liu, G. Sheng, K. Huang and Z. Lai, CrystEngComm, 2018, 20, 7621 DOI: 10.1039/C8CE01397G

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