Kinetic energy release values in a metastable transition prove that the structures of the fragment ions C 6 H 9 S + , obtained from electron ionization of cyclic thioethers which are dimethyl disulfide derivatives of 1,4-hexadiene, 2,6-octadiene and 1,6-heptadiene are identical in spite of the diffe
Substituted 3-phenylpropenoates and related analogs: electron ionization mass spectral fragmentation and density functional theory calculations
✍ Scribed by C. E. Wheelock; M. E. Colvin; J. R. Sanborn; B. D. Hammock
- Publisher
- John Wiley and Sons
- Year
- 2008
- Tongue
- English
- Weight
- 201 KB
- Volume
- 43
- Category
- Article
- ISSN
- 1076-5174
- DOI
- 10.1002/jms.1384
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✦ Synopsis
Abstract
Analysis of ethyl 3‐(2‐chlorophenyl)propenoate by electron ionization mass spectrometry showed the distinct loss of an ortho chlorine. To characterize the structural requisites for the observed mass fragmentation, a series of 30 halogen‐substituted 3‐phenylpropenoate‐related structures were examined. All ester‐containing alkene derivatives exhibited loss of the distinctive chlorine from the 2‐position of the phenyl ring. Analogous derivatives with the halogen (chlorine or bromine) in the para position did not evidence selective halogen loss. Results demonstrated that substituted 3‐phenylpropenoates and their analogs fragment via the formation of a previously reported benzopyrylium intermediate. To understand the correlation between the intramolecular radical substitution and the abundance and selectivity of the chlorine (or other halogen) displacement, density functional theory calculations were performed to determine the charge on the principal cation involved in the chlorine loss (in the ortho, meta, and para positions), the charge for the neutral radical (noncation), the excess alpha‐electron density on the relevant atom and the energy to form the cation from the neutral atom (ionization energy). Results showed that the selectivity and extent of halogen displacement correlated highly to the electrophilicity of the radical cation as well as the neutral radical. These data further support the proposed fragmentation mechanism involving intramolecular radical elimination. Copyright © 2008 John Wiley & Sons, Ltd.
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