| Literature DB >> 29732097 |
Caiyun Xu1, Hang Liu1, Dandan Li1, Ji-Hu Su2, Hai-Long Jiang1.
Abstract
The selective aerobic oxidative coupling of amines under mild conditions is an important laboratory and commercial procedure yet a great challenge. In this work, a porphyrinic metal-organic framework, PCN-222, was employed to catalyze the reaction. Upon visible light irradiation, the semiconductor-like behavior of PCN-222 initiates charge separation, evidently generating oxygen-centered active sites in Zr-oxo clusters indicated by enhanced porphyrin π-cation radical signals. The photogenerated electrons and holes further activate oxygen and amines, respectively, to give the corresponding redox products, both of which have been detected for the first time. The porphyrin motifs generate singlet oxygen based on energy transfer to further promote the reaction. As a result, PCN-222 exhibits excellent photocatalytic activity, selectivity and recyclability, far superior to its organic counterpart, for the reaction under ambient conditions via combined energy and charge transfer.Entities:
Year: 2018 PMID: 29732097 PMCID: PMC5916110 DOI: 10.1039/c7sc05296k
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Scheme 1Schematic illustration of LCCT and ET processes involved in PCN-222 for the selective oxidative coupling of amines under visible light irradiation.
Oxidative coupling of benzylamines under various conditions
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| |||||
| Entry | Catalyst | Air | Light |
| Conv. |
| 1 | PCN-222 | + | + | 1 | 100 |
| 2 | — | + | + | 2 | 1 |
| 3 | PCN-222 | + | – | 2 | — |
| 4 | PCN-222 | – | + | 1 | 44.4 |
| 5 | PCN-222 | – | + | 0.75 | 100 |
| 6 | PCN-222 | + | + | 1.5 | 95.6 |
| 7 | TPPCOOMe | + | + | 1 | 26.7 |
Reaction conditions: 0.1 mmol benzylamine, 5 mg PCN-222, 100 mW cm–2 Xe lamp cutoff below 420 nm, 3 mL CH3CN, and air atmosphere.
Determined by GC analysis.
Under a 1 atm N2 atmosphere.
Under a 1 atm O2 atmosphere.
Under an AM 1.5 illumination of 100 mW cm–2.
3.6 mg TPPCOOMe.
Photocatalytic oxidative coupling of various amines into imines
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| Entry | Substrate | Product |
| Conv. | Sel. |
| 1 | X = H | X = H | 60 | 100 | 100 |
| 2 | X = | X = | 65 | 100 | 100 |
| 3 | X = | X = | 55 | 100 | 100 |
| 4 | X = | X = | 45 | 100 | 100 |
| 5 | X = | X = | 60 | 100 | 100 |
| 6 | X = | X = | 70 | 100 | 100 |
| 7 | X = | X = | 65 | 100 | 100 |
| 8 | X = | X = | 75 | 100 | 100 |
| 9 |
|
| 80 | 100 | 100 |
| 10 |
|
| 65 | 100 | 100 |
| 11 |
|
| 60 | 100 | 100 |
| 12 |
|
| 70 | 100 | 100 |
| 13 |
|
| 60 | 100 | 100 |
| 14 |
|
| 120 | — | — |
Reaction conditions: 0.1 mmol amine, 5 mg PCN-222, 100 mW cm–2 Xe lamp cutoff below 420 nm, 3 mL CH3CN, and air atmosphere.
Determined by GC-MS.
Fig. 1(a) ESR detection of the electron transfer process in PCN-222. (b) ESR detection of O2˙– generation over PCN-222 trapped by DMPO. (c) The detection of hole-involved intermediates in PCN-222. (d) Hammett plot for the oxidation of benzylamine and its para-substituted derivatives photocatalyzed by PCN-222. All ESR tests were described in detail in the Experimental section.
Fig. 2(a) Proposed charge transfer process for the photocatalytic oxidative coupling of benzylamine over PCN-222, in which the complex HOMO constitution is simplified. (b) ESR spectra (light–dark difference) of PCN-222 for the 1O2 detection in the presence of 4-oxo-TMP.