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Design of Pore Properties of an Al-Based Metal-Organic Framework for the Separation of an Ethane/Ethylene Gas Mixture via Ethane-Selective Adsorption.

Kyung Ho ChoJi Woong YoonJeong Hyeon LeeJin Chul KimDonghui JoJaedeuk ParkSu-Kyung LeeSang Kyu KwakU-Hwang Lee
Published in: ACS applied materials & interfaces (2023)
A series of Al-based isomorphs (CAU-10H, MIL-160, KMF-1, and CAU-10pydc) were synthesized using isophthalic acid (ipa), 2,5-furandicarboxylic acid (fdc), 2,5-pyrrole dicarboxylic acid (pyrdc), and 3,5-pyridinedicarboxylic acid (pydc), respectively. These isomorphs were systematically investigated to identify the best adsorbent for effectively separating C 2 H 6 /C 2 H 4 . All CAU-10 isomorphs exhibited preferential adsorption of C 2 H 6 over that of C 2 H 4 in mixture. CAU-10pydc exhibited the best C 2 H 6 /C 2 H 4 selectivity (1.68) and the highest C 2 H 6 uptake (3.97 mmol g -1 ) at 298 K and 1 bar. In the breakthrough experiment using CAU-10pydc, 1/1 (v/v) and 1/15 (v/v) C 2 H 6 /C 2 H 4 gas mixtures were successfully separated into high-purity C 2 H 4 (>99.95%), with remarkable productivities of 14.0 L STP kg -1 and 32.0 L STP kg -1 , respectively, at 298 K. Molecular simulations revealed that the exceptional separation performance of CAU-10pydc originated from the increased porosity and reduced electron density of the pyridine ring of pydc, leading to a relatively larger decrease in π-π interactions with C 2 H 4 than in the C-H···π interactions with C 2 H 6 . This study demonstrates that the pore size and geometry of the CAU-10 platform are modulated by the inclusion of heteroatom-containing benzene dicarboxylate or heterocyclic rings of dicarboxylate-based organic linkers, thereby fine-tuning the C 2 H 6 /C 2 H 4 separation ability. CAU-10pydc was determined to be an optimum adsorbent for this challenging separation.
Keyphrases
  • metal organic framework
  • liquid chromatography
  • solid phase extraction
  • ionic liquid
  • air pollution
  • mass spectrometry
  • single cell
  • high resolution
  • atomic force microscopy
  • single molecule