| Literature DB >> 31807200 |
Sarah L Skraba-Joiner1, Carter J Holt1, Richard P Johnson1.
Abstract
Arenes undergo rearrangement of phenyl, alkyl, halogen and other groups through the intermediacy of ipso arenium ions in which a proton is attached at the same carbon as the migrating substituent. Interconversions among the six quaterphenyl isomers have been studied here as a model for rearrangements of linear polyphenyls. All reactions were carried out in 1 M CF3SO3H (TfOH) in dichloroethane at 150 °C in a microwave reactor for 30-60 min, with product formation assessed by high field NMR analysis. Under these reaction conditions, m,p'-quaterphenyl is the equilibrium product. This isomer is unchanged by the reaction conditions and all other quaterphenyl isomers rearrange to m,p' as the dominant or sole product. DFT computations with inclusion of implicit solvation support a complex network of phenyl and biphenyl shifts, with barriers to rearrangement in the range of 10-21 kcal/mol. Consistent with experiments, the lowest energy arenium ion located on this surface is due to protonation of m,p'-quaterphenyl. This supports thermodynamic control based on carbocation energies.Entities:
Keywords: arenium ion; carbocation; density functional theory; microwave reaction; rearrangement; superacid
Year: 2019 PMID: 31807200 PMCID: PMC6880835 DOI: 10.3762/bjoc.15.258
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Scheme 1Acid-catalyzed rearrangements of arenes.
Scheme 2Rearrangement of quaterphenyl isomers by phenyl shifts.
Scheme 3Synthesis of quaterphenyl isomers.
Product distributions from rearrangement of quaterphenyl isomers.a,b.
| Reactant | Time (min) | Yield | ||||||
| 30 | – | 100 | – | – | – | – | 70 | |
| 60 | – | 100 | – | – | – | – | 55 | |
| 30 | – | 100 | – | – | – | – | 88 | |
| 60 | – | 100 | – | – | – | – | 75 | |
| 30 | – | 50 | 50 | – | – | – | 81 | |
| 60 | – | 67 | 33 | – | – | – | 90 | |
| 30 | – | 81 | 19 | – | – | – | 70 | |
| 30 | – | 57 | 43 | – | – | – | 64 | |
| 30 | – | 60 | 40 | – | – | – | 67 | |
aAll reactions were carried out in 1 M CF3SO3H in dichloroethane at 150 °C in a microwave reactor. bYields are total isolated products after flash chromatography.
Scheme 4Rearrangement of quaterphenyl isomers via (a) 1,2-phenyl shift and (b) 1,2-biphenyl shift.
Figure 1Pathways for terminal 1,2-phenyl shifts in quaterphenyl isomers calculated with IEFPCM(DCE)/B3LYP/6-31+G(d,p) theory. Relative free energies are given in kcal/mol.
Figure 2Pathways for 1,2-biphenyl shifts in quaterphenyl isomers calculated with IEFPCM(DCE)/B3LYP/6-31+G(d,p) theory. Relative free energies are given in kcal/mol.