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Engineering Pore Environments of Sulfate‐Pillared Metal‐Organic Framework for Efficient C<sub>2</sub>H<sub>2</sub>/CO<sub>2</sub> Separation with Record Selectivity

108

Citations

35

References

2023

Year

Abstract

Engineering pore environments exhibit great potential in improving gas adsorption and separation performances but require specific means for acetylene/carbon dioxide (C<sub>2</sub> H<sub>2</sub> /CO<sub>2</sub> ) separation due to their identical dynamic diameters and similar properties. Herein, a novel sulfate-pillared MOF adsorbent (SOFOUR-TEPE-Zn) using 1,1,2,2-tetra(pyridin-4-yl) ethene (TEPE) ligand with dense electronegative pore surfaces is reported. Compared to the prototype SOFOUR-1-Zn, SOFOUR-TEPE-Zn exhibits a higher C<sub>2</sub> H<sub>2</sub> uptake (89.1 cm<sup>3</sup> g<sup>-1</sup> ), meanwhile the CO<sub>2</sub> uptake reduces to 14.1 cm<sup>3</sup> g<sup>-1</sup> , only 17.4% of that on SOFOUR-1-Zn (81.0 cm<sup>3</sup> g<sup>-1</sup> ). The high affinity toward C<sub>2</sub> H<sub>2</sub> than CO<sub>2</sub> is demonstrated by the benchmark C<sub>2</sub> H<sub>2</sub> /CO<sub>2</sub> selectivity (16 833). Furthermore, dynamic breakthrough experiments confirm its application feasibility and good cyclability at various flow rates. During the desorption cycle, 60.1 cm<sup>3</sup> g<sup>-1</sup> C<sub>2</sub> H<sub>2</sub> of 99.5% purity or 33.2 cm<sup>3</sup> g<sup>-1</sup> C<sub>2</sub> H<sub>2</sub> of 99.99% purity can be recovered by stepped purging and mild heating. The simulated pressure swing adsorption processes reveal that 75.5 cm<sup>3</sup> g<sup>-1</sup> C<sub>2</sub> H<sub>2</sub> of 99.5+% purity with a high gas recovery of 99.82% can be produced in a counter-current blowdown process. Modeling studies disclose four favorable adsorption sites and dense packing for C<sub>2</sub> H<sub>2</sub> .

References

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