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  • We present a combined experimental and theoretical quantification of the adsorption enthalpies of seven organic molecules (acetone, acetonitrile, dichloromethane, ethanol, ethyl acetate, hexane, and toluene) on graphene. Adsorption enthalpies were measured by inverse gas chromatography and ranged from -5.9 kcal/mol for dichloromethane to -13.5 kcal/mol for toluene. The strength of interaction between graphene and the organic molecules was estimated by density functional theory (PBE, B97D, M06-2X, and optB88-vdW), wave function theory (MP2, SCS(MI)-MP2, MP2.5, MP2.X, and CCSD(T)), and empirical calculations (OPLS-AA) using two graphene models: coronene and infinite graphene. Symmetry-adapted perturbation theory calculations indicated that the interactions were governed by London dispersive forces (amounting to similar to 60% of attractive interactions), even for the polar molecules. The results also showed that the adsorption enthalpies were largely controlled by the interaction energy. Adsorption enthalpies obtained from ab initio molecular dynamics employing non-local, optB88-vdW functional were in excellent agreement with the experimental data, indicating that the functional can cover physical phenomena behind adsorption of organic molecules on graphene sufficiently well.
  • We present a combined experimental and theoretical quantification of the adsorption enthalpies of seven organic molecules (acetone, acetonitrile, dichloromethane, ethanol, ethyl acetate, hexane, and toluene) on graphene. Adsorption enthalpies were measured by inverse gas chromatography and ranged from -5.9 kcal/mol for dichloromethane to -13.5 kcal/mol for toluene. The strength of interaction between graphene and the organic molecules was estimated by density functional theory (PBE, B97D, M06-2X, and optB88-vdW), wave function theory (MP2, SCS(MI)-MP2, MP2.5, MP2.X, and CCSD(T)), and empirical calculations (OPLS-AA) using two graphene models: coronene and infinite graphene. Symmetry-adapted perturbation theory calculations indicated that the interactions were governed by London dispersive forces (amounting to similar to 60% of attractive interactions), even for the polar molecules. The results also showed that the adsorption enthalpies were largely controlled by the interaction energy. Adsorption enthalpies obtained from ab initio molecular dynamics employing non-local, optB88-vdW functional were in excellent agreement with the experimental data, indicating that the functional can cover physical phenomena behind adsorption of organic molecules on graphene sufficiently well. (en)
Title
  • Adsorption of Small Organic Molecules on Graphene
  • Adsorption of Small Organic Molecules on Graphene (en)
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  • Adsorption of Small Organic Molecules on Graphene
  • Adsorption of Small Organic Molecules on Graphene (en)
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  • RIV/61989592:15310/13:33147759!RIV14-GA0-15310___
http://linked.open...avai/riv/aktivita
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  • P(ED2.1.00/03.0058), P(EE2.3.20.0017), P(GAP208/10/1742), P(GBP208/12/G016), S
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  • 16
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  • 59596
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  • RIV/61989592:15310/13:33147759
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  • Exchange; benchmark; dispersion; surface-properties; perturbation-theory; augmented-wave method; random-phase-approximation; intermolecular interaction energies; density-functional theory; inverse gas-chromatography (en)
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  • US - Spojené státy americké
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  • [0BC699AD6E75]
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  • Journal of the American Chemical Society
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  • 135
http://linked.open...iv/tvurceVysledku
  • Otyepka, Michal
  • Karlický, František
  • Šafářová, Klára
  • Jurečka, Petr
  • Otyepková, Eva
  • Lazar, Petr
  • Kocman, Mikuláš
http://linked.open...ain/vavai/riv/wos
  • 000318204800065
issn
  • 0002-7863
number of pages
http://bibframe.org/vocab/doi
  • 10.1021/ja403162r
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  • 15310
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