4.8 Article

Combining In Situ Techniques (XRD, IR, and 13C NMR) and Gas Adsorption Measurements Reveals CO2-Induced Structural Transitions and High CO2/CH4 Selectivity for a Flexible Metal- Organic Framework JUK-8

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 13, 期 24, 页码 28503-28513

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c07268

关键词

metal-organic framework; flexibility; in situ techniques; adsorption; separation

资金

  1. National Science Centre (NCN), Poland [2020/36/C/ST4/00534, 2019/35/B/ST5/01067]
  2. DFG [FOR 2433]
  3. BMBF [05K19OD2]
  4. Helmholtz-Zentrum Berlin fur Materialien und Energie

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This study presents the mechanistic understanding of CO2-induced pore-opening transitions of the water-stable MOF JUK-8 and its potential application in gas purification. Detailed insights into the structural transformation and MOF-adsorbate interactions were obtained through multiple experimental techniques. The high selectivity towards carbon dioxide was confirmed by single-gas adsorption experiments and high-pressure coadsorption experiments.
Flexible metal-organic frameworks (MOFs) are promising materials in gas-related technologies. Adjusting the material to processes requires understanding of the flexibility mechanism and its influence on the adsorption properties. Herein, we present the mechanistic understanding of CO2-induced pore-opening transitions of the water-stable MOF JUK-8 ([Zn(oba)(pip)(]n), oba(2-)= 4,4'-oxybis(benzenedicarboxylate), pip = 4-pyridyl-functionalized benzene-1,3-dicarbohydrazide) as well as its potential applicability in gas purification. Detailed insights into the global structural transformation and subtle local MOF-adsorbate interactions are obtained by three in situ techniques (XRD, IR, and (CO2)-C-13-NMR). These results are further supported by single-crystal X-ray diffraction (SC-XRD) analysis of the solvated and guest-free phases. High selectivity toward carbon dioxide derived from the single-gas adsorption experiments of CO2 (195 and 298 K), Ar (84 K), O-2 (90 K), N-2 (77 K), and CH4 (298 K) is confirmed by high-pressure coadsorption experiments of the CO2/CH4 (75:25 v/v) mixture at different temperatures (288, 293, and 298 K) and in situ NMR studies of the coadsorption of (CO2)-C-13/(CH4)-C-13 (50:50 v/v; 195 K).

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