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Controllable inverse C2H2/CO2 separation in ultra-stable Zn-organic frameworks for efficient removal of trace CO2 from acetylene.
- Source :
- Journal of Materials Chemistry A; 11/28/2022, Vol. 10 Issue 44, p23630-23638, 9p
- Publication Year :
- 2022
-
Abstract
- It is of great challenge to produce highly pure C<subscript>2</subscript>H<subscript>2</subscript> from the CO<subscript>2</subscript>/C<subscript>2</subscript>H<subscript>2</subscript> mixture because of their similar physical properties. Metal–organic frameworks (MOFs) have shown great potential in purifying C<subscript>2</subscript>H<subscript>2</subscript> by virtue of their versatile pore environment with excellent tunability. However, the rational exploration of ideal MOF adsorbents with CO<subscript>2</subscript>-preferred CO<subscript>2</subscript>/C<subscript>2</subscript>H<subscript>2</subscript> separation performance (also called inverse C<subscript>2</subscript>H<subscript>2</subscript>/CO<subscript>2</subscript> separation) is extremely difficult. In this work, we demonstrate a new Zn-MOF family (SNNU-334–336) with special CO<subscript>2</subscript>-preferred CO<subscript>2</subscript>/C<subscript>2</subscript>H<subscript>2</subscript> separation performance, which can be rationally controlled by functional groups as well as temperature. Notably, SNNU-334–336 MOFs show extremely high stability, and SNNU-336 can maintain a stable structure even after 7 days in boiling water and 30 days in air, which is unprecedented for all Zn-based MOF materials. Different to common MOF adsorbents, the adsorption isotherms of SNNU-334–336 MOFs for C<subscript>2</subscript>H<subscript>2</subscript> and CO<subscript>2</subscript> under the same temperature all have an intersection point (we called the inverse point), which gradually moves to the high-pressure region with the increase of temperature and changes with the pore environment variation. So, SNNU-334–336 MOFs can be rationally controlled from C<subscript>2</subscript>H<subscript>2</subscript>-selective to CO<subscript>2</subscript>-selective CO<subscript>2</subscript>/C<subscript>2</subscript>H<subscript>2</subscript> adsorption separation adsorbents. IAST selectivity calculation indicates that a very high CO<subscript>2</subscript> over C<subscript>2</subscript>H<subscript>2</subscript> selectivity (3595.4) can be achieved, which nearly surpasses those of all reported MOFs with CO<subscript>2</subscript>-preferred CO<subscript>2</subscript>/C<subscript>2</subscript>H<subscript>2</subscript> separation performance. Fixed-bed column breakthrough experiments further prove that SNNU-334–336 MOFs all have controllable inverse CO<subscript>2</subscript>/C<subscript>2</subscript>H<subscript>2</subscript> separation ability and can produce C<subscript>2</subscript>H<subscript>2</subscript> with extra-high purity (>99.9%) from the CO<subscript>2</subscript>/C<subscript>2</subscript>H<subscript>2</subscript> (1/99) mixture. [ABSTRACT FROM AUTHOR]
Details
- Language :
- English
- ISSN :
- 20507488
- Volume :
- 10
- Issue :
- 44
- Database :
- Complementary Index
- Journal :
- Journal of Materials Chemistry A
- Publication Type :
- Academic Journal
- Accession number :
- 160236138
- Full Text :
- https://doi.org/10.1039/d2ta07473g