Literature DB >> 26484564

Probing the Structure, Pseudorotation, and Radial Vibrations of Cyclopentane by Femtosecond Rotational Raman Coherence Spectroscopy.

Philipp Kowalewski1, Hans-Martin Frey1, Daniel Infanger1, Samuel Leutwyler1.   

Abstract

Femtosecond time-resolved Raman rotational coherence spectroscopy (RCS) is employed to determine accurate rotational, vibration–rotation coupling constants, and centrifugal distortion constants of cyclopentane (C5H10). Its lowest-frequency vibration is a pseudorotating ring deformation that interconverts 10 permutationally distinct but energetically degenerate "twist" minima interspersed by 10 "bent" conformers. While the individual twist and bent structures are polar asymmetric tops, the pseudorotation is fast on the time scale of external rotation, rendering cyclopentane a fluxionally nonpolar symmetric top molecule. The pseudorotational level pattern corresponds to a one-dimensional internal rotor with a pseudorotation constant Bps ≈ 2.8 cm(-1). The pseudorotational levels are significantly populated up to l = ± 13 at 298 K; <10% of the molecules are in the l = 0 level. The next-higher vibration is the “radial” ν23 ring deformation mode at 273 cm–1, which is far above the pseudorotational fundamental. Femtosecond Raman RCS measurements were performed in a gas cell at T = 293 K and in a pulsed supersonic jet at T ≈ 90 K. The jet cooling reduces the pseudorotational distribution to l < ±8 and eliminates the population of ν23, allowing one to determine the rotational constant as A0 = B0 = 6484.930(11) MHz. This value is ∼300 times more precise than the previous value. The fit of the RCS transients reveals that the rotation–pseudorotation coupling constant αe,psB = −0.00070(1) MHz is diminutive, implying that excitation of the pseudorotation has virtually no effect on the B0 rotational constant of cyclopentane. The smallness of αe,psB can be realized when comparing to the vibration–rotation coupling constant of the ν23 vibration, αe,23B = -9.547(1) MHz, which is about 104 times larger.

Entities:  

Year:  2015        PMID: 26484564     DOI: 10.1021/acs.jpca.5b07930

Source DB:  PubMed          Journal:  J Phys Chem A        ISSN: 1089-5639            Impact factor:   2.781


  3 in total

1.  Mass-correlated rotational Raman spectra with high resolution, broad bandwidth, and absolute frequency accuracy.

Authors:  Christian Schröter; Jong Chan Lee; Thomas Schultz
Journal:  Proc Natl Acad Sci U S A       Date:  2018-04-27       Impact factor: 11.205

2.  Revealing pseudorotation and ring-opening reactions in colloidal organic molecules.

Authors:  P J M Swinkels; S G Stuij; Z Gong; H Jonas; N Ruffino; B van der Linden; P G Bolhuis; S Sacanna; S Woutersen; P Schall
Journal:  Nat Commun       Date:  2021-05-14       Impact factor: 14.919

3.  Low-Frequency (Gigahertz to Terahertz) Depolarized Raman Scattering Off n-Alkanes, Cycloalkanes, and Six-Membered Rings: A Physical Interpretation.

Authors:  Andrew J Farrell; Mario González-Jiménez; Gopakumar Ramakrishnan; Klaas Wynne
Journal:  J Phys Chem B       Date:  2020-08-21       Impact factor: 2.991

  3 in total

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