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Published March 15, 1979 | Published
Journal Article Open

Electronic spectroscopy of benzene and the fluorobenzenes by variable angle electron impact

Abstract

Electron-impact spectra of benzene and 11 fluorine-substituted derivatives have been obtained at impact energies of 75, 50, and either 25 or 30 eV, and scattering angles from 5° to 80°. Each molecule shows an absorption maximum at about 3.9 eV corresponding to a singlet-->triplet, pi-->pi*, transition. In benzene, fluorobenzene, o- and m-difluorobenzene, and 1,3,5-trifluorobenzene, an additional singlet-->triplet excitation was detected at about 5.7 eV. Three singlet-->singlet transitions analogous to the 4.90, 6.20, and 6.95 eV benzene excitations are seen in each of the fluorine-substituted molecules. The more highly substituted compounds exhibit an additional singlet-->singlet transition, which we designate as the C band system, that is most clearly observed in the hexafluorobenzene spectrum, where it has a peak at 5.32 eV. We briefly discuss the effects on relative transtion intensities due to the different molecular symmetries of the various fluorobenzenes. We also report numerous superexcited states for each molecule studied.

Additional Information

Copyright © 1979 American Institute of Physics. Received 1 June 1978. This work was supported in part by a contract (No. ET-76-S-03-767) from the Department of Energy. Report Code: CALT-767P4-169. Work performed [by R.P.F.] in partial fulfillment of the requirements for the Ph.D. Degree in Chemistry at the California Institute of Technology. Arthur Amos Noyes Laboratory of Chemical Physics, Contribution No. 5800.

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September 14, 2023
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