| Literature DB >> 24397570 |
Shaozhong Ge1, Rebecca A Green, John F Hartwig.
Abstract
First-row metal complexes often undergo undesirable one-electron redox processes during two-electron steps of catalytic cycles. We report the amination of aryl chlorides and bromides with primary aliphatic amines catalyzed by a well-defined, single-component nickel precursor (BINAP)Ni(η(2)-NC-Ph) (BINAP = 2,2'-bis(biphenylphosphino)-1,1'-binaphthalene) that minimizes the formation of Ni(I) species and (BINAP)2Ni. The scope of the reaction encompasses electronically varied aryl chlorides and nitrogen-containing heteroaryl chlorides, including pyridine, quinoline, and isoquinoline derivatives. Mechanistic studies support the catalytic cycle involving a Ni(0)/Ni(II) couple for this nickel-catalyzed amination and are inconsistent with a Ni(I) halide intermediate. Monitoring the reaction mixture by (31)P NMR spectroscopy identified (BINAP)Ni(η(2)-NC-Ph) as the resting state of the catalyst in the amination of both aryl chlorides and bromides. Kinetic studies showed that the amination of aryl chlorides and bromides is first order in both catalyst and aryl halide and zero order in base and amine. The reaction of a representative aryl chloride is inverse first order in PhCN, but the reaction of a representative aryl bromide is zero order in PhCN. This difference in the order of the reaction in PhCN indicates that the aryl chloride reacts with (BINAP)Ni(0), formed by dissociation PhCN from (BINAP)Ni(η(2)-NC-Ph), but the aryl bromide directly reacts with (BINAP)Ni(η(2)-NC-Ph). The overall kinetic behavior is consistent with turnover-limiting oxidative addition of the aryl halide to Ni(0). Several pathways for catalyst decomposition were identified, such as the formation of the catalytically inactive bis(amine)-ligated arylnickel(II) chloride, (BINAP)2Ni(0), and the Ni(I) species [(BINAP)Ni(μ-Cl)]2. By using a well-defined nickel complex as catalyst, the formation of (BINAP)2Ni(0) is avoided and the formation of the Ni(I) species [(BINAP)Ni(μ-Cl)]2 is minimized.Entities:
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Year: 2014 PMID: 24397570 PMCID: PMC3985683 DOI: 10.1021/ja411911s
Source DB: PubMed Journal: J Am Chem Soc ISSN: 0002-7863 Impact factor: 15.419
Scheme 1Methods for Nickel-Catalyzed C–N Coupling Reactions
Evaluation of Nickel Precursors and Ligands for Amination of 3-Chloroanisole with Octylaminea
| entry | ligand (mol %) | conv (%) | yield (%) |
|---|---|---|---|
| 1 | PPh3 (2) | <5 | 3 |
| 2 | PPh3 (4) | <5 | <2 |
| 3 | PCy3 (2) | <5 | 3 |
| 4 | PCy3 (4) | <5 | <2 |
| 5 | DPPE (1) | <5 | <2 |
| 6 | DPPE (2) | <5 | <2 |
| 7 | PDPP (1) | <5 | <2 |
| 8 | DPPP (2) | <5 | <2 |
| 9 | DPPB (1) | <5 | <2 |
| 10 | DPPB (2) | <5 | <2 |
| 11 | DPPF (1) | 31 | 16 |
| 12 | DPPF (2) | 44 | 32 |
| 13 | BINAP (1) | 71 | 66 |
| 14 | BINAP (2) | 75 | 67 |
| 15 | [Ni0] (1) | 98 | 92 |
Conditions: 3-chloroanisole (0.400 mmol), octylamine (0.600 mmol), NaOBu (0.600 mmol), 24 h. Conversion and yield were determined by GC analysis using dodecane as internal standard.
[Ni0] = (BINAP)Ni(η2-NC-Ph).
Nickel-Catalyzed Amination: Aryl Chloride Scopea
Conditions: ArCl (0.400 mmol), octylamine (0.600 mmol), (BINAP)Ni(η2-NC-Ph) (4.0 μmol, 1 mol %), NaOBu (0.600 mmol), toluene (1 mL); temperature, 50 °C; reaction time, 24 h.
(BINAP)Ni(η2-NC-Ph) (16.0 μmol, 4 mol %).
Nickel-Catalyzed Amination: Primary Amine Scopea
Conditions: 3-chloroanisole (0.400 mmol), primary amine (0.600 mmol), (BINAP)Ni(η2-NC-Ph) (8.0 μmol, 2 mol %), NaOBu (0.600 mmol), toluene (1 mL); temperature, 50 °C; reaction time, 24 h.
Temperature, 80 °C.
(BINAP)Ni(η2-NC-Ph) (16.0 μmol, 4 mol %).
Nickel-Catalyzed Amination of Heteroaryl Halides with Primary Aminesa
Conditions: 3-chloroanisole (0.400 mmol), primary amine (0.600 mmol), (BINAP)Ni(η2-NC-Ph) (8.0 μmol, 2 mol %), NaOBu (0.600 mmol), toluene (1 mL); temperature, 50 °C; reaction time, 24 h.
Temperature, 80 °C.
(BINAP)Ni(η2-NC-Ph) (16.0 μmol, 4 mol %).
Scheme 2
Figure 1Molecular structure of the nickelacyclic compound 9. All the ellipsoids are drawn at the 50% probability and all the hydrogen atoms are omitted for clarity.
Scheme 3
Scheme 4
Scheme 5
Figure 2Plots of initial rates vs concentration of catalyst, aryl chloride, and benzonitrile for the amination of 4-chlorobenzotrifluoride (0.10–1.0 M) with n-octylamine (0.30 M) catalyzed by (BINAP)NiCl(C6H4-4-CF3) (0.0060–0.018 M) in the presence of benzonitrile (0.090–0.180 M) and NaOBu (0.30 M) at room temperature.
Figure 3Plots of initial rates vs concentration of catalyst, aryl bromide, and benzonitrile for the amination of 4-bromobenzotrifluoride (0.10–0.80 M) with n-octylamine (0.30 M) catalyzed by (BINAP)NiCl(C6H4-4-CF3) (0.0060–0.018 M) in the presence of benzonitrile (0.090–0.180 M) and NaOBu (0.30 M) at room temperature.
Scheme 6Proposed Catalytic Cycle for the Nickel-Catalyzed Amination of Aryl Chlorides and Bromides
Scheme 7