| Literature DB >> 35492190 |
Yang Chen1, Jianhua Hu1, Aishun Ding2.
Abstract
We report herein the synthesis of a polymeric photosensitizer and its application in aerobic photooxidative hydroxylation of boronic acids. The polymeric photosensitizer was synthesized by the condensation of anthraquinone-2-carbonyl chloride (AQ-2-COCl) with poly (2-hydroxyethyl methacrylate) (PHEMA). The photo-oxidative hydroxylation of boronic acids using anthraquinone-containing-poly (2-hydroxyethyl methacrylate) (AQ-PHEMA) was then explored and shown to exhibit high efficiency and broad scope. Moreover, AQ-PHEMA could be easily recovered and reused for more than 20 times without significant loss of the catalytic activity. This journal is © The Royal Society of Chemistry.Entities:
Year: 2020 PMID: 35492190 PMCID: PMC9049903 DOI: 10.1039/d0ra00176g
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Scheme 1Oxidative hydroxylation of boronic acids with small molecular catalysts.
Scheme 2The synthetic procedure of AQ-PHEMA and its application in photooxidative hydroxylation of boronic acids.
Optimization of the reaction conditionsa
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| Entry | Solvent | Catalyst (mol%) | e-Donor (equiv.) | Time (h) | Yield |
| 1 | CH3CN | 5 | i-Pr2NEt (2) | 35 | 86 |
| 2 | Et2O | 5 | i-Pr2NEt (2) | 48 | 34 |
| 3 | Toluene | 5 | i-Pr2NEt (2) | 48 | 46 |
| 4 | DCM | 5 | i-Pr2NEt (2) | 48 | 51 |
| 5 | MTBE | 5 | i-Pr2NEt (2) | 48 | 67 |
| 6 | Acetone | 5 | i-Pr2NEt (2) | 48 | 68 |
| 7 | CH3NO2 | 5 | i-Pr2NEt (2) | 37 | 74 |
| 8 | THF | 5 | i-Pr2NEt (2) | 42 | 78 |
| 9 | Methyl acetate | 5 | i-Pr2NEt (2) | 38 | 84 |
| 10 | EtOH | 5 | i-Pr2NEt (2) | 33 | 89 |
| 11 | MeOH | 5 | i-Pr2NEt (2) | 32 | 92 |
| 12 | Propyl acetate | 5 | i-Pr2NEt (2) | 36 | 95 |
| 13 | Ispropyl acetate | 5 | i-Pr2NEt (2) | 36 | 96 |
| 14 | Ethyl acetate | 5 | i-Pr2NEt (2) | 29 | 99 |
| 15 | DMC | 5 | i-Pr2NEt (2) | 34 | 99 |
| 16 | 1,4-Dioxane | 5 | i-Pr2NEt (2) | 27 | 99 |
| 17 | 1,4-Dioxane | 5 | NH3·H2O (4 mL) | 27 | 45 (34) |
| 18 | 1,4-Dioxane | 5 | DBU | 27 | 69 |
| 19 | 1,4-Dioxane | 5 | Dicyclohexylamine | 27 | 82 |
| 20 | 1,4-Dioxane | 5 | NEt3 | 27 | 84 |
| 21 | 1,4-Dioxane | 5 | i-Pr2NEt (1) | 27 | 81 (14) |
| 22 | 1,4-Dioxane | 3 | i-Pr2NEt (2) | 27 | 99 (97) |
| 23 | 1,4-Dioxane | 1 | i-Pr2NEt (2) | 27 | 83 (11) |
| 24 | 1,4-Dioxane | — | i-Pr2NEt (2) | 27 | 11 (89) |
| 25 | 1,4-Dioxane | 3 | i-Pr2NEt (2) | 27 | 0 (99) |
| 26 | 1,4-Dioxane | 3 | i-Pr2NEt (2) | 27 | 0 (99) |
| 27 | 1,4-Dioxane | 3 | i-Pr2NEt (2) | 12 | 99 |
| 28 | 1,4-Dioxane | — | i-Pr2NEt (2) | 27 | 10 (90) |
The reaction were carried out using 1a (1 mmol) in solvent (5 mL), irradiated by purple LED under air atmosphere at rt. (Based on AQ anchored on PHEMA, the mass of 5 mol% AQ-PHEMA is 17 mg; the mass of 3 mol% AQ-PHEMA is 10 mg; the mass of 1 mol% AQ-PHEMA is 3 mg).
Yield determined by 1H NMR analysis using CH2Br2 (1 mmol) as internal standard.
Recovered yield of 1a determined by 1H NMR analysis using CH2Br2 (1 mmol) as internal standard.
Isolated yield of 2a.
The reaction was carried out without light.
The reaction was carried out at 80 °C.
The reaction was carried out using 3 mol% AQ as catalyst.
The reaction was carried out in the presence of 4 mg of PHEMA.
The oxidative hydroxylation of arylboronic acid under condition Aaa
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All reactions were carried out using 1 (1 mmol), AQ-PHEMA (3 mol%), i-Pr2NEt (2 equiv.), in 1,4-dioxane (5 mL) irradiated by a purple LED light at rt under air atmosphere. Isolated yield was reported.
The oxidative hydroxylation of 3a–e under condition Aaa
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All reactions were carried out using 1 (1 mmol), AQ-PHEMA (3 mol%), i-Pr2NEt (2 equiv.), in 1,4-dioxane (5 mL) irradiated by a purple LED light at rt under air atomsphere. Isolated yield was reported.
Scheme 3Gram scale reaction.
Fig. 1Recycling experiments of the photocatalytic reaction of 1x.
Fig. 21H NMR spectra for the recovered AQ-PHEMA (after 21 cycles) and the original AQ-PHEMA in d6-DMSO.
Fig. 3The GPC traces of the original AQ-PHEMA and the recovered AQ-PHEMA (after 21 cycles).
Scheme 4Mechanism studies.
Fig. 4Proposed mechanism.