| Literature DB >> 25670996 |
Bin Yin1, Shinsuke Inagi1, Toshio Fuchigami1.
Abstract
Anodic fluorination of dithioacetals bearing electron-withdrawing ester, acetyl, amide, and nitrile groups at their α-positions was comparatively studied using various supporting poly(HF) salts like Et3N·nHF (n = 3-5) and Et4NF·nHF (n = 3-5). In the former two cases, the corresponding α-fluorination products or fluorodesulfurization products were obtained selectively depending on supporting poly(HF) salts used. In sharp contrast, in the latter two cases, fluorination product selectivity was strongly affected by the electron-withdrawing ability of α-substituents: A dithioacetal bearing a relatively weak electron-withdrawing amide group provided a fluorodesulfurization product selectively while a dithioacetal having a strongly electron-withdrawing nitrile group gave the α-fluorination product predominantly regardless of the poly(HF) salts used.Entities:
Keywords: anodic fluorination; anodic fluorodesulfurization; electrosynthesis; fluorination product selectivity; poly(HF) salt
Year: 2015 PMID: 25670996 PMCID: PMC4311748 DOI: 10.3762/bjoc.11.12
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Scheme 1Anodic fluorination of sulfides having an electron-withdrawing group.
Scheme 2Anodic fluorination of dithioacetals.
First oxidation potentials, of compounds 1.
| Substrate | X | R (σ* value)a | |
| H | COOEt (+ 0.69) | 1.60 | |
| SPh | COOEt (+ 0.69) | 1.73 | |
| H | COMe (+ 0.60) | 1.59 | |
| SPh | COMe (+ 0.60) | 1.63 | |
| H | CONEt2 | 1.60 | |
| SPh | CONEt2 | 1.64 | |
| H | CN (+ 1.30) | 1.85 | |
| SPh | CN (+ 1.30) | 2.04 | |
aFrom [29]. bSubstrate concentration: 5 mM; sweep rate: 100 mV/s; working electrode: Pt disk (Ø = 1 mm).
Anodic fluorination of 1b in various solvents containing Et3N·3HFa.
| Entry | Solvent | Charge passed (F/mol) | Yield (%)b,c | Total yield (%) | ||
| 1 | MeCN | 3.0 | 74 (70) | 9 | 0 | 83 |
| 2 | DME | 5.0 | 74 | 9 | 0 | 83 |
| 3 | CH2Cl2 | 2.5 | 73 | 5 | 4 | 82 |
| 4 | MeNO2 | 2.2 | 73 | 7 | 1 | 81 |
| 5d | MeCN | – | – | – | – | – |
aConstant current (8 mA/cm2) electrolysis was carried out in 0.3 M Et3N·3HF/solvent. bDetermined by 19F NMR. cIsolated yield given in parentheses. dMechanical stirring was performed overnight at ambient temperature without electrolysis.
Figure 1Dependency of fluorinated product selectivity on a series of fluoride salts (a) Et3N·nHF (n = 3–5) and (b) Et4NF·nHF (n = 3–5).
Anodic fluorination of dithioacetal derivative 1 in acetonitrilea.
| Entry | R | Supporting electrolyte | Charge passed (F/mol) | Yield (%)b,c | ||
| 1 | COMe ( | Et3N·3HF | 3.0 | 80 (66) | – | 5 |
| 2 | COMe ( | Et3N·5HF | 2.5 | – | 63 | 3 |
| 3 | COMe ( | Et4NF·3HF | 2.7 | 60 | – | 10 |
| 4 | COMe ( | Et4NF·5HF | 2.5 | 6 | 78 (70) | 1 |
| 5 | CONEt2 ( | Et3N·3HF | 5.0 | 0 | 18 | 17 |
| 6 | CONEt2 ( | Et3N·5HF | 3.0 | 0 | 72 (63) | 1 |
| 7 | CN ( | Et3N·3HF | 3.0 | 98 (87) | 0 | 0 |
| 8 | CN ( | Et3N·4HF | 2.8 | 98 | 0 | 0 |
| 9 | CN ( | Et3N·5HF | 2.5 | 90 | 0 | 0 |
| 10 | CN ( | Et4NF·3HF | 2.7 | 94 | 0 | 0 |
| 11 | CN ( | Et4NF·4HF | 2.5 | 95 | 0 | 0 |
| 12 | CN ( | Et4NF·5HF | 2.5 | 93 | 0 | 0 |
aConstant current (8 mA/cm2) electrolysis was carried out using 0.3 M supporting fluoride salt. bDetermined by 19F NMR. cIsolated yields are given in parentheses.
Scheme 3Plausible reaction mechanism for anodic fluorination of 1b, 1d, and 1f.
Scheme 4Mechanism for suppression of the elimination of HF (deprotonation) and preferable desulfurization of D at high concentrations of HF in an electrolytic solution.