| Literature DB >> 30279606 |
Takeshi Matsumoto1,2, Daiki Uchijo1, Takuji Koike1, Ryoya Namiki1, Ho-Chol Chang3.
Abstract
We report the photochemical carboxylation ofEntities:
Year: 2018 PMID: 30279606 PMCID: PMC6168591 DOI: 10.1038/s41598-018-33060-3
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Synthesis of 1 from opda and [FeII(H2O)6][ClO4]2.
Figure 2(a) UV-Vis spectra of opda (6.0 × 10−3 M) under N2 (···) or CO2 (), and 1 (2.0 × 10−3 M) under N2 (—) or CO2 () in THF at room temperature. (b) Time-course plots of the amount of photochemically evolved hydrogen from a) opda (6.0 × 10−3 M; 1.2 × 10−5 mol/4 mL; λex = 300 ± 10 nm; 63.5–66.9 mW) under N2 (▪) or CO2 (), and 1 (2.0 × 10−3 M; 8.0 × 10−6 mol/4 mL; λex = 300 ± 10 nm; 63.9–66.9 mW) under N2 (•) or CO2 () in THF.
Figure 3(a)UV-Vis spectra of opda (6.0 × 10−3 M) after irradiation (λex = 300 ± 10 nm; 63.9–66.9 mW) under CO2 () or N2 (···), and those of 1 (2.0 × 10−3 M) under CO2 () or N2 (—) in THF (8 h; room temperature), together with spectrum of commercial DBA (). (b) Crystal structure of DBA (unit A); atomic displacement parameters set to 50% probability; color-code: blue = N, gray = C, magenta = O, and light blue = H; hydrogen atoms are depicted in ball-and-stick mode for clarity.
Results of the photo-irradiation of aromatic amines under CO2a.
| Run | Substrate | Metal | Product | Yield(%)b | |||
|---|---|---|---|---|---|---|---|
| 1d |
| Fe(II) | 298 | 300 ± 10 |
| 54.1 | 0.44 |
| 2d |
| Fe(II) | 298 | — | N.D.e | —g | —g |
| 3 |
| Fe(II) | 298 | 300 ± 10 |
| 58.0 | 0.47 |
| 4 |
| — | 298 | 300 ± 10 |
| 27.5 | 0.22 |
| 5 |
| Fe(II) | 291 | 289 ± 10 | N.D.e | — | —g |
| 6 |
| — | 298 | 300 ± 10 |
| trace | —g |
| 7 |
| Fe(II) | —f | — f | — f | — f | —f |
| 8 |
| — | 324 | 300 ± 10 |
| trace | —g |
| 9 |
| Fe(II) | —f | —f | —f | —f | —f |
aReaction time: 8 h; light power: 63.5–66.9 mW (λex = 300 ± 10 nm) and 55.1 mW (289 ± 10 nm). bEstimated based on the amounts of used aromatic amines and absorbance of the products. cApparent quantum yield (%). dThe ex-situ-prepared Fe complex was used. Not detected. fThe reaction was not investigated due to the formation of precipitates after mixing [FeII(H2O)6][ClO4]2 and 3 eq. of the substrates. gNot estimated.
Figure 41H NMR (THF-d8, 500 MHz) spectra of (a) t-BuSH, (b) t-Bu2S2, (c) t-Bu2S2 after photo-irradiation (λex = 300 ± 10 nm; 64.5 mW; 3 h), (d) t-BuSH with opda, (e) t-BuSH after photoirradiation (λex = 300 ± 10 nm; 64.2 mW; 3 h) in the presence of opda, (f) t-BuSH with 1, and (g) t-BuSH after photo-irradiation (λex = 300 ± 10 nm; 64.5 mW; 3 h) in the presence of 1, in THF-d8 under CO2.
Figure 513C NMR (CD3CN, 126 MHz) spectra of the photochemical product (λex = 300 ± 10 nm) of 1 under (a) CO2 and (b) 13CO2 in THF at room temperature. The symbol “*” indicates the 13C NMR signals of CD3CN.
Figure 6Plausible reaction mechanisms for the photo-induced direct carboxylation of opda in the (a) presence and (b) absence of Fe(II).