| Literature DB >> 30510673 |
Daniel M Hewett1, Sebastian Bocklitz2, Daniel P Tabor3, Edwin L Sibert Iii3, Martin A Suhm2, Timothy S Zwier1.
Abstract
The conformational preferences ofEntities:
Year: 2017 PMID: 30510673 PMCID: PMC6223349 DOI: 10.1039/c7sc02027a
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Fig. 1UV excitation spectra for ethylbenzene through octylbenzene, and decylbenzene. Assignments are made here for clarity, with the dashed lines indicating bands with the same assigned structure between molecules. The low frequency regions of heptylbenzene and octylbenzene are magnified 5× for clarity (red). The band located between the origins of the g1 and all trans conformers is a vibronic band of the g1 conformer.
Fig. 2Energy level diagrams of pentylbenzene through octylbenzene. Calculations were done at the B3LYP-D3BJ/def2TZVP level of theory. The experimentally observed structures are shown with colored markers for clarity. The first observed folded structure, g1g3g4 in octylbenzene, is shown in red.
Fig. 3The seven experimentally observed conformations seen in the alkylbenzene series, shown using octylbenzene as the model system.
Fig. 4(a–c) Experimental infrared spectra of pentylbenzene through octylbenzene for the all-trans (a), g1 (b), and g1g2 (c) conformers (red) compared to the calculated spectra for the same conformations (black). The blue spectrum on the all-trans pentylbenzene carries some weight from the g3 conformer (3 : 1 all-trans : g3 ratio).
Fig. 5g1g'4 theoretical spectrum (black) versus the experimental spectrum of heptylbenzene taken at 37 498 cm–1 (red).
Fig. 6Theoretical spectra of a 1 : 1 ratio of the g1g3 and g1g4 conformers (black) versus the experimental spectra of heptylbenzene (red) and octylbenzene (green) taken at 37 514 cm–1.
Fig. 7Theoretical spectrum of the g1g3g4 conformer (black) versus the experimental spectra of octylbenzene taken at 37 488 cm–1 (a) and 37 502 cm–1 (b).
Fig. 8Raman spectra of hexylbenzene and heptylbenzene shown with unscaled calculated stick spectra for the low energy conformations weighted by their calculated relative abundance at 298 K. Bands assigned to conformers not observed in the UV/IR studies are marked with asterisks.
Fig. 9Comparison of the hairpin turn observed in the pure alkanes by the Suhm group (A) versus the turn observed in octylbenzene (B).
Fig. 10Dipole decomposition of the theoretical spectrum of decylbenzene (a). The two major delocalized asymmetric modes of the all-trans conformer of decylbenzene are displayed as well (b).
Fig. 11Site frequencies for the all-trans conformers (a) and the observed conformers of octylbenzene (b).