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CO_2 capture through halogen bonding: A theoretical perspective

CO_2 capture through halogen bonding: A theoretical perspective
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摘要 Halogen bonding interactions between several halogenated ion pairs and CO2 molecules have been investigated by means of density functional theory calculations. To account for the influence of solvent environment, the implicit polarized continuum model was also employed. The bromide and iodide cations of ionic liquids (ILs) under study can interact with CO2 molecules via X O interactions, which become much stronger in strength than those in the complexes of iodo-perfluorobenzenes, very effective halogen bond donors, with CO2 molecules. Such interactions, albeit somewhat weaker in strength, are also observed between halogenated ion pairs and CO2 molecules. Thus, the solubility of CO2 may be improved when using halogenated ILs, as a result of the formation of X O halogen bonds. Under solvent effects, the strength of the interactions tends to be weakened to some degree, with a concomitant elongation of intermolecular distances. The results presented here would be very useful in the design and synthesis of novel and potent ILs for CO2 physical absorption. Halogen bonding interactions between several halogenated ion pairs and CO2 molecules have been investigated by means of density functional theory calculations. To account for the influence of solvent environment, the implicit polarized continuum model was also employed. The bromide and iodide cations of ionic liquids (ILs) under study can interact with CO2 molecules via X…O interactions, which become much stronger in strength than those in the complexes of iodo-perfluorobenzenes, very effective halogen bond donors, with CO2 molecules. Such interactions, albeit somewhat weaker in strength, are also observed between halogenated ion pairs and CO2 molecules. Thus, the solubility of CO2 may be improved when using halogenated ILs, as a result of the formation of X-..O halogen bonds. Under solvent effects, the strength of the interactions tends to be weakened to some degree, with a concomitant elongation of intermolecular distances. The results presented here would be very useful in the design and synthesis of novel and potent ILs for CO2 physical absorption.
出处 《Science China Chemistry》 SCIE EI CAS 2012年第8期1566-1572,共7页 中国科学(化学英文版)
基金 supported by the National Basic Research Program of China (2009CB219902) the Natural Science Foundation of Shanghai (11ZR1408700) the National Natural Science Foundation of China (21136004 and 21103047)
关键词 液体CO2 卤素 氢键相互作用 捕获 密度泛函理论 离子液体 溶剂效应 分子间 halogen bonding interactions, CO2 physical absorption, calculations
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  • 1Carapellucci R, Milazzo A. Membrane systems for CO2 capture and their integration with gas turbine plants. J Power Energy, 2003, 217: 505-517.
  • 2Parrish WR, Kidnay AJ. Fundamentals of Natural Gas Processing. Boca Raton, FL: CRC Press, 2006.
  • 3Yang H, Xu Z, Fan M, Gupta R, Slimane RB, Bland AE, Wright 1. Progress in carbon dioxide separation and capture: A review. J Envi- ron Sci, 2008, 20:14-27.
  • 4Rao A, Rubin E. A technical, economic and environmental assess- ment of amine-based CO2 capture technology for power plant green- house gas control. Environ Sci Technol, 2002, 36:4467-4475.
  • 5Kittel J, Idem R, Gelowitz D, Tontiwachwuthikul P, Parrain G, Bon- neau A. Corrosion in MEA units for COs capture: Pilot plant studies. Enerev Proc Edia. 2009, 1 : 791-797.
  • 6Anthony JL, Aki SNVK, Maginn EJ, Brennecke JF. Feasibility of using ILs for carbon dioxide capture. Int J Environ Technol Manage, 2004, 4: 105-1 15.
  • 7Pennline HW, Luebke DR, Jones KL, Myers CR, Morsi BL, Heintz YJ, Ilconich JB. Progress in carbon dioxide capture and separation research for gasification-based power generation point sources. Fuel Process Technol, 2008, 89:897-907.
  • 8Rogers RD. Reflections on ILs. Nature, 2007, 447:917-918.
  • 9Brennecke JF, Maginn EJ. ILs: Innovative fluids for chemical pro- cessing. AlchE J, 2001, 47:2384-2389.
  • 10Wappel D, Gronald G, Kalb R, Draxler J. ILs for post-combustion CO2 absorption. Int J Greenhouse Gas Control, 2010, 4:486-494.

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