Issue 19, 2022

Robust metal–organic framework with abundant large electronegative sites for removal of CO2 from a ternary C2H2/C2H4/CO2 mixture

Abstract

Separation of ternary gas mixtures is challenging and has rarely been achieved with a single porous solid material. Herein a trinuclear iron(III) based metal–organic framework (MOF) with high water stability, {[Fe33-O)(DFBDC)3(TPT)](OH)}n (JXNU-14) (DFBDC2− = 2,5-difluoroterephthalate and TPT = 2,4,6-tri(4-pyridinyl)-1,3,5-triazine), is applied for the removal of CO2 from a ternary C2H2/C2H4/CO2 mixture. The trigonal bipyramidal cavities and cylindrical cavities decorated with highly electronegative fluorine and oxygen atoms and abundant π rings in JXNU-14 offer stronger affinity for C2H2 and C2H4 than for CO2, resulting in the high-performance separation of a ternary equimolar mixture of C2H2, C2H4, and CO2, which is demonstrated by pure-component gas adsorption isotherms and actual column breakthrough experiments. The much stronger binding of C2H2 and C2H4 as compared to CO2 was further revealed by computational simulations. This work provides a useful strategy for the construction of MOFs possessing high-density electronegative sites for the efficient removal of CO2 from a ternary C2H2/C2H4/CO2 mixture.

Graphical abstract: Robust metal–organic framework with abundant large electronegative sites for removal of CO2 from a ternary C2H2/C2H4/CO2 mixture

Supplementary files

Article information

Article type
Research Article
Submitted
02 Jun 2022
Accepted
08 Aug 2022
First published
10 Aug 2022

Inorg. Chem. Front., 2022,9, 5064-5071

Robust metal–organic framework with abundant large electronegative sites for removal of CO2 from a ternary C2H2/C2H4/CO2 mixture

C. Xiong, Y. Xiao, Q. Liu, L. Chen, C. He, Q. Liu and Y. Wang, Inorg. Chem. Front., 2022, 9, 5064 DOI: 10.1039/D2QI01175A

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