| Literature DB >> 35520826 |
Vijayaragavan Elumalai1, Jørn H Hansen1.
Abstract
A mild, green and highly efficient protocol was developed for the synthesis of substituted phenols via ipso-hydroxylation of arylboronic acids in ethanol. The method utilizes the combination of aqueous hydrogen peroxide as the oxidant and H2O2/HBr as the reagent under unprecedentedly simple and convenient conditions. A wide range of arylboronic acids were smoothly transformed into substituted phenols in very good to excellent yields without chromatographic purification. The reaction is scalable up to at least 5 grams at room temperature with one-minute reaction time and can be combined in a one-pot sequence with bromination and Pd-catalyzed cross-coupling to generate more diverse, highly substituted phenols. This journal is © The Royal Society of Chemistry.Entities:
Year: 2020 PMID: 35520826 PMCID: PMC9057563 DOI: 10.1039/d0ra08580d
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Scheme 1Ipso-hydroxylation of phenylboronic acids.
Survey of solvents
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| Entry | Solvent | Yield 2a |
| 1 | MeOH | 87 |
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| 3 | THF | 82 |
| 4 | EtOAc | 89 |
| 5 | H2O | 55 |
| 6 | Acetone | 84 |
| 7 | MeCN | 86 |
| 8 | DCM | 50 |
Reaction procedure: to a stirred solution of phenylboronic acid 1a (1.0 mmol) in EtOH (3 mL) was added H2O2 (30%, 3 equiv.) and stirred for one minute at room temperature.
Isolated yield.
NMR-yield.
Poor solubility of 1a.
Effect of H2O2 ratio with reaction time on overall product yield
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| Entry | H2O2 (equiv.) | Time (min) | Yield 2a |
| 1 | 1 | 1 | 50 |
| 2 | 2 | 1 | 99 |
| 3 | 2 | 5 | 99 |
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Reaction procedure: to a stirred solution of phenylboronic acid 1 (1.0 mmol) in EtOH (3 mL) was added H2O2 (30%) and stirred for one minute at room temperature.
NMR-yield.
Scheme 2Scope of ipso-hydroxylation chemistry.
Scheme 3Gram-scale synthesis of phenols.
Scheme 4Hypothesized reaction mechanism for the ipso-hydroxylation of boronic acids.
Scheme 5Tandem ipso-hydroxylation-bromination.
Scheme 6One-pot ipso-hydroxylation-bromination and Suzuki coupling to generate aryl-substituted phenols.