| Literature DB >> 30202467 |
Igor B Krylov1,2, Stanislav A Paveliev1, Mikhail A Syroeshkin1, Alexander A Korlyukov3,4, Pavel V Dorovatovskii5, Yan V Zubavichus5, Gennady I Nikishin1, Alexander O Terent'ev1,2.
Abstract
The iodo-oxyimidation ofEntities:
Keywords: N-hydroxyimides; free radicals; hypervalent iodine; imide-N-oxyl radicals; iodination; oxidative functionalization
Year: 2018 PMID: 30202467 PMCID: PMC6122379 DOI: 10.3762/bjoc.14.188
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Scheme 1Difunctionalization of double C=C bond with the formation of C–O and C–I bonds.
Scheme 2Iodo-oxyimidation of styrenes 1a–k with preparation of products 3aa–ka, 3ab–db, 3fb, 3hb, and 3kb.
Optimization of the synthesis of iodo-oxyimidation product 3a from styrene 1a and N-hydroxyimide 2a a.
| entry | oxidant (molar ratio: mol/mol of | solvent | time | yield of |
| 1 | PhI(OAc)2 (0.6) | DCM | 5 min | 63 |
| 2 | PhI(OAc)2 (0.6) | DCM | 10 min | 90 |
| 3 | PhI(OAc)2 (0.6) | DCM | 24 h | 84 |
| 4 | PhI(OAc)2 (1.5) | DCM | 10 min | 73 |
| 5 | PhI(OAc)2 (0.6) | MeCN | 10 min | 73 |
| 6 | PhI(OAc)2 (0.6) | AcOH | 10 min | 65 |
| 7 | PhI(OAc)2 (0.6) | PhMe | 10 min | 84 |
| 8c | PhI(OAc)2 (2) | DCM | 10 min | 7 |
| 9d | PhI(OAc)2 (2) | DCM | 10 min | 52 |
| 10 | PhI(OCOCF3)2 (0.6) | DCM | 10 min | 31 |
| 11 | IBX (1.0) | DCM | 24 h | 54 |
| 12 | IBX (0.3) | DCM | 24 h | 32 |
| 13 | DMP (0.6) | DCM | 30 min | 52 |
| 14 | DMP (0.3) | DCM | 30 min | 52 |
| 15 | Oxone (2) | DCM/H2O (2:1) | 4 h | 44 |
| 16 | 2-iodobenzoic acid (0.1), Oxone (2) | DCM/H2O (2:1) | 4 h | 44 |
| 17 | TBHP (70% aq) (2) | DCM | 12 h | ND |
| 18 | TBHP (70% aq) (2) | MeCN | 12 h | ND |
| 19 | TBHP (70% aq) (2) | AcOH | 12 h | ND |
| 20 | TBAI (0.1), TBHP (70% aq) (2) | MeCN | 12 h | ND |
| 21 | (NH4)2S2O8 (1.5) | DCM/H2O (2:1) | 12 h | 5 |
| 22 | DDQ (2) | MeCN | 30 min | 5 |
aReaction conditions: 1a (1 mmol), 2a (1 mmol), I2 (0.5 mmol), oxidant (0.3–2 mmol), solvent (6.0 mL), 20–25 °C, 5 min–24 h, under air. For entries where a mixture of solvents was used, the v/v ratio is given in parentheses. bIsolated yield. ND = not detected. cNaI·2H2O (1 mmol) was employed instead of I2. dTBAI (1 mmol) was employed instead of I2.
Figure 1Scope of the iodo-oxyimidation of vinylarenes with I2/PhI(OAc)2 system. Reaction conditions: vinylarene 1a–k (0.5 mmol), N-hydroxyimide 2a,b (0.5 mmol), I2 (0.25 mmol), PhI(OAc)2 (0.3 mmol), DCM (3.0 mL), 20–25 °C, 10 min, under air. rr = regioisomers ratio. aIBX (0.5 mmol) was used instead of PhI(OAc)2, reaction time: 24 h. bDMP (0.15 mmol) was used instead of PhI(OAc)2, reaction time 30 min.
Figure 2Molecular structure of 3ca. Atoms are presented as anisotropic displacement parameters (ADP) ellipsoids (50% probability). For clarity, only one set of positions of the disordered ethylene bridge and Ph groups is shown.
Scheme 3The proposed mechanism of iodo-oxyimidation of styrene (1a) using the NHPI/I2/PhI(OAc)2 system with the formation of product 3aa.
Figure 3CV curves of styrene (1a, purple), NHPI (2a, red), I2 (blue) and PhI(OAc)2 (green) in 0.1 M n-Bu4NBF4/MeCN at a scan rate of 100 mV/s on a working glassy-carbon electrode.
Scheme 4Gram-scale synthesis of compound 3aa.
Scheme 5Synthetic utility of the iodo-oxyimides 3aa and 3ab.