Complexity surrounding an apparently simple Fermi resonance in <i>p</i>-fluorotoluene revealed using two-dimensional laser-induced fluorescence (2D-LIF) spectroscopy

David J. Kemp, Laura E. Whalley, Adrian M. Gardner, William D. Tuttle, Lewis G. Warner, Timothy G. Wright

The Journal of Chemical Physics · 2019 · 11 citations · 35 references

DOIFull text

Open access

Abstract

Two-dimensional laser-induced fluorescence (2D-LIF) spectroscopy is a powerful tool allowing overlapped features in an electronic spectrum to be separated, and interactions between vibrations and torsions to be identified. Here the technique is employed to assign the 790-825 cm<sup>-1</sup> region above the origin of the S<sub>1</sub> ← S<sub>0</sub> transition in para-fluorotoluene, which provides insight into the unusual time-resolved results of Davies and Reid [Phys. Rev. Lett. 109, 193004 (2012)]. The region is dominated by a pair of bands that arise from a Fermi resonance; however, the assignment is complicated by contributions from a number of overtones and combinations, including vibration-torsion ("vibtor") levels. The activity in the 2D-LIF spectra is compared to the recently reported zero-electron-kinetic-energy spectra [Tuttle et al., J. Chem. Phys. 146, 244310 (2017)] to arrive at a consistent picture of the energy levels in this region of the spectrum.

References

35