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Clathrate Structure Determination by Combining Crystal Structure Prediction with Computational and Experimental 129 Xe NMR Spectroscopy.
Selent, Marcin; Nyman, Jonas; Roukala, Juho; Ilczyszyn, Marek; Oilunkaniemi, Raija; Bygrave, Peter J; Laitinen, Risto; Jokisaari, Jukka; Day, Graeme M; Lantto, Perttu.
Affiliation
  • Selent M; NMR Research Unit, Faculty of Science, University of Oulu, 90014, Oulu, Finland.
  • Nyman J; Faculty of Chemistry, Wroclaw University, Joliot Curie 14, 50-383, Wroclaw, Poland.
  • Roukala J; Computational Systems Chemistry, School of Chemistry, University of Southampton, Southampton, UK.
  • Ilczyszyn M; NMR Research Unit, Faculty of Science, University of Oulu, 90014, Oulu, Finland.
  • Oilunkaniemi R; Faculty of Chemistry, Wroclaw University, Joliot Curie 14, 50-383, Wroclaw, Poland.
  • Bygrave PJ; Laboratory of Inorganic Chemistry, University of Oulu, 90014, Oulu, Finland.
  • Laitinen R; Computational Systems Chemistry, School of Chemistry, University of Southampton, Southampton, UK.
  • Jokisaari J; Laboratory of Inorganic Chemistry, University of Oulu, 90014, Oulu, Finland.
  • Day GM; NMR Research Unit, Faculty of Science, University of Oulu, 90014, Oulu, Finland.
  • Lantto P; Computational Systems Chemistry, School of Chemistry, University of Southampton, Southampton, UK.
Chemistry ; 23(22): 5258-5269, 2017 Apr 19.
Article in En | MEDLINE | ID: mdl-28111848
ABSTRACT
An approach is presented for the structure determination of clathrates using NMR spectroscopy of enclathrated xenon to select from a set of predicted crystal structures. Crystal structure prediction methods have been used to generate an ensemble of putative structures of o- and m-fluorophenol, whose previously unknown clathrate structures have been studied by 129 Xe NMR spectroscopy. The high sensitivity of the 129 Xe chemical shift tensor to the chemical environment and shape of the crystalline cavity makes it ideal as a probe for porous materials. The experimental powder NMR spectra can be used to directly confirm or reject hypothetical crystal structures generated by computational prediction, whose chemical shift tensors have been simulated using density functional theory. For each fluorophenol isomer one predicted crystal structure was found, whose measured and computed chemical shift tensors agree within experimental and computational error margins and these are thus proposed as the true fluorophenol xenon clathrate structures.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Type of study: Prognostic_studies / Risk_factors_studies Language: En Journal: Chemistry Journal subject: QUIMICA Year: 2017 Document type: Article Affiliation country: Finland

Full text: 1 Collection: 01-internacional Database: MEDLINE Type of study: Prognostic_studies / Risk_factors_studies Language: En Journal: Chemistry Journal subject: QUIMICA Year: 2017 Document type: Article Affiliation country: Finland
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