Perfluoropolyethers: Development of an All-Atom Force Field for Molecular Simulations and Validation with New Experimental Vapor Pressures and Liquid Densities

dc.contributor.authorBlack, Jana E.
dc.contributor.authorSilva, Gonçalo M. C.
dc.contributor.authorKlein, Christoph
dc.contributor.authorIacovella, Christopher R.
dc.contributor.authorMorgado, Pedro
dc.contributor.authorMartins, Luís F. G.
dc.contributor.authorFilipe, Eduardo J. M.
dc.contributor.authorMcCabe, Clare
dc.date.accessioned2018-03-01T15:57:34Z
dc.date.available2018-03-01T15:57:34Z
dc.date.issued2017-05
dc.description.abstractA force field for perfluoropolyethers (PFPEs) based on the general optimized potentials for liquid simulations all-atom (OPLS-AA) force field has been derived in conjunction with experiments and ab initio quantum mechanical calculations. Vapor pressures and densities of two liquid PFPEs, perfluorodiglyme (CF3−O−(CF2−CF2−O)2−CF3) and perfluorotriglyme (CF3−O−(CF2−CF2−O)3−CF3), have been measured experimentally to validate the force field and increase our understanding of the physical properties of PFPEs. Force field parameters build upon those for related molecules (e.g., ethers and perfluoroalkanes) in the OPLS-AA force field, with new parameters introduced for interactions specific to PFPEs. Molecular dynamics simulations using the new force field demonstrate excellent agreement with ab initio calculations at the RHF/6-31G* level for gas-phase torsional energies (<0.5 kcal mol−1 error) and molecular structures for several PFPEs, and also accurately reproduce experimentally determined densities (<0.02 g cm−3 error) and enthalpies of vaporization derived from experimental vapor pressures (<0.3 kcal mol−1). Additional comparisons between experiment and simulation show that polyethers demonstrate a significant decrease in enthalpy of vaporization upon fluorination unlike related molecules (e.g., alkanes and alcohols). Simulation suggests this phenomenon is a result of reduced cohesion in liquid PFPEs due to a reduction in localized associations between backbone oxygen atoms and neighboring molecules.por
dc.identifier.authoremailjana.black@vanderbilt.edu
dc.identifier.authoremailgoncalo.silva20@gmail.com
dc.identifier.authoremailchristoph.t.klein@me.com
dc.identifier.authoremailchristopher.r.iacovella@vanderbilt.edu
dc.identifier.authoremailpm.esselar@gmail.com
dc.identifier.authoremaillfgm@uevora.pt
dc.identifier.authoremailefilipe@tecnico.ulisboa.pt
dc.identifier.authoremailc.mccabe@vanderbilt.edu
dc.identifier.citationJana E. Black, Goncalo M. C. Silva, Christoph Klein, Christopher R. Iacovella, Pedro Morgado, Luís F. G. Martins, Eduardo J. M. Filipe, Clare McCabe, J. Phys. Chem. B, 2017, 121, 6588−6600por
dc.identifier.doi10.1021/acs.jpcb.7b00891por
dc.identifier.revistaJ. Chem Phys B
dc.identifier.scientificarea309por
dc.identifier.urihttp://hdl.handle.net/10174/22691
dc.language.isoporpor
dc.peerreviewedyespor
dc.publisherACS Publicationspor
dc.rightsopenAccesspor
dc.titlePerfluoropolyethers: Development of an All-Atom Force Field for Molecular Simulations and Validation with New Experimental Vapor Pressures and Liquid Densitiespor
dc.typearticlepor

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