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Thiophene-Functionalized Cadmium(II)-Based Metal-Organic Frameworks for CO 2 Adsorption with Gate-Opening Effect, Separation, and Catalytic Conversion.

Anirban KarmakarAndreia A C D SantosPeixi LiuAtash V GurbanovJoão PiresElisabete C B A AlegriaKhudayar I HasanovMaria de Fátima C Guedes da SilvaZhihua WangArmando J L Pombeiro
Published in: Inorganic chemistry (2024)
Two new porous three-dimensional cadmium(II) metal-organic frameworks (MOFs) containing thiophene-appended carboxylate acid ligands, formulated as [Cd(L1)(4,4'-Bipy)] n .2 n (DMF) ( 1 ) and [Cd(L2)(4,4'-Bipy)] n .2 n (DMF) ( 2 ) [where L1 = 5-{(thiophen-2-ylmethyl)amino}isophthalate, L2 = 5-{(thiophen-3-ylmethyl)amino}isophthalate, 4,4'-Bipy = 4,4'-bipyridine, and DMF = N , N '-dimethylformamide] have been synthesized and structurally characterized. The gas adsorption analysis of the activated MOFs shows that they specifically capture CO 2 (uptake amount 4.36 mmol/g under 1 bar at 195 K) over N 2 and CH 4 . Moreover, both MOFs show a gate-opening-closing phenomenon, which features the S-shaped isotherms with impressive hysteretic desorption during the CO 2 adsorption-desorption process at 195 K. Ideal adsorbed solution theory (IAST) calculations of these MOFs displayed that the obtained selectivity values for CO 2 /CH 4 (50:50) and CO 2 /N 2 (15:85) are approximately 8.6-23 and 93-565, respectively. Configurational bias Monte Carlo simulation was performed to understand the mechanism behind the better CO 2 adsorption by these MOFs. Catalytic activity of the MOFs for the CO 2 fixation reactions with different epoxides to form cyclic carbonates were tested. These MOFs demonstrated a significantly high conversion (94-99%) of epichlorohydrin to the corresponding cyclic carbonate within 8 h of reaction time at 1 bar of CO 2 pressure, at 70 °C, and they can be reused up to five cycles without losing considerably their activity.
Keyphrases
  • metal organic framework
  • monte carlo
  • aqueous solution
  • minimally invasive
  • mass spectrometry
  • nk cells
  • risk assessment
  • molecular dynamics simulations
  • carbon dioxide
  • tandem mass spectrometry
  • solid state