| Literature DB >> 29142727 |
Xianjun Lang1, Wei Hao1, Wan Ru Leow1, Shuzhou Li1, Jincai Zhao2, Xiaodong Chen1.
Abstract
The selective oxidation of sulfides into sulfoxides receives much attention due to industrial and biological applications. However, the realization of this reaction with molecular oxygen at room temperature, which is of importance towards green and sustainable chemistry, remains challenging. Herein, we develop a strategy to achieve the aerobic oxidation of sulfides into sulfoxides by exploring the synergy between a tertiary amine and titanium dioxide via visible-light photoredox catalysis. Specifically, titanium dioxide can interact with triethylamine (TEA) to form a visible-light harvesting surface complex, preluding the ensuing selective redox reaction. Moreover, TEA, whose stability was demonstrated by a turnover number of 32, plays a critical role as a redox mediator by shuttling electrons during the oxidation of sulfide. This work suggests that the addition of a redox mediator is highly functional in establishing visible-light-induced reactions via heterogeneous photoredox catalysis.Entities:
Year: 2015 PMID: 29142727 PMCID: PMC5664354 DOI: 10.1039/c5sc01813g
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Scheme 1Proposed mechanism for the aerobic oxidation of thioanisole on TiO2 with tertiary amine as the redox mediator under visible-light irradiation.
Fig. 1The formation of a surface complex of TiO2 and its implications: a and b, the possible adsorption sites of TMA onto the rutile (110) and anatase (101) surfaces of TiO2; c, schematic (not to scale) of the band alignment of TMA onto the surface of Degussa P25 TiO2; d, UV-visible absorbance spectroscopy of Degussa P25 TiO2 and the complex between TMA and TiO2.
The calculated adsorption energies E ad (eV) of TMA onto the anatase (101) and rutile (110) surfaces
| Surface | O-2c (1) | Ti-5c (2) | O-3c (3) |
| Rutile (110) | –0.04 | –0.43 | –0.09 |
| Anatase (101) | 2.20 | –0.28 | –0.04 |
The influence of amine on the selective aerobic oxidation of thioanisole under visible-light irradiation
|
| |||
| Entry | Amine | Conv. | Select. |
| 1 | None | 7 | 99 |
| 2 | Isopropylamine | 30 | 98 |
| 3 | Butylamine | 35 | 98 |
| 4 |
| 44 | 97 |
| 5 | Trimethylamine | 50 | 97 |
| 6 | Triethylamine | 58 | 96 |
| 7 |
| 28 | 97 |
| 8 | Triethanolamine | 14 | 99 |
Reaction conditions: 0.3 mmol of thioanisole, 0.03 mmol of amine additive, 40 mg of Degussa P25 TiO2, 300 W Xe lamp, 5 mL of CH3OH, λ > 400 nm, 0.1 MPa of O2, 5 h.
Determined by GC-FID using chlorobenzene as the internal standard, conversion of thioanisole, selectivity of methyl phenyl sulfoxide.
0.015 mmol of amine.
The effect of the amount of TEA on the photocatalytic oxidation of thioanisole on TiO2 under visible-light irradiation
| Entry | Amount of TEA (mmol) |
| Conv. | Select. |
| 1 | 0.01 | 30 | 43 | 98 |
| 2 | 0.015 | 20 | 49 | 97 |
| 3 | 0.03 | 10 | 58 | 96 |
| 4 | 0.3 | 1 | 59 | 96 |
| 5 | 0.6 | 0.5 | 62 | 95 |
Reaction conditions: 0.3 mmol of thioanisole, 0.1 MPa of O2, 40 mg of Degussa P25 TiO2, 300 W Xe lamp, 5 mL of CH3OH, 5 h, λ > 400 nm.
Determined by GC-FID using chlorobenzene as the internal standard, conversion of thioanisole, selectivity of methyl phenyl sulfoxide.
Fig. 2The influence of the solvent on the visible-light-induced selective oxidation of thioanisole with O2 on TiO2 in the presence of tertiary amine (TMA or TEA).
Visible-light-induced oxidation of sulfides into sulfoxide with O2 on TiO2 with TEA as redox mediator
|
| |||||
| Entry | Substrate | Product |
| Conv. | Select. |
| 1 |
|
| 22 | 81 | 93 |
| 2 |
|
| 10 | 84 | 92 |
| 3 |
|
| 10 | 85 | 93 |
| 4 |
|
| 10 | 82 | 95 |
| 5 |
|
| 10 | 81 | 98 |
| 6 |
|
| 10 | 76 | 95 |
| 7 |
|
| 12 | 81 | 88 |
| 8 |
|
| 12 | 84 | 86 |
| 9 |
|
| 12 | 86 | 85 |
| 10 |
|
| 12 | 33 | 92 |
| 11 |
|
| 12 | 62 | 79 |
| 12 |
|
| 12 | 77 | 88 |
| 13 |
|
| 12 | 50 | 80 |
Reaction conditions: 0.3 mmol of sulfide, 0.03 mmol of TEA, 40 mg of Degussa P25 TiO2, 300 W Xe lamp, 5 mL of CH3OH, λ > 400 nm, 0.1 MPa of O2.
Determined by GC-FID using chlorobenzene as the internal standard, conversion of sulfide, selectivity of the corresponding sulfoxide.
0.6 mmol of thioanisole, 0.015 mmol of TEA.
0.1 mmol of TEA.