| Literature DB >> 30034759 |
Haihui Peng1, Rong Cai2, Chang Xu3, Hao Chen3, Xiaodong Shi1.
Abstract
Gold-catalyzed C-heteroatom (C-X) coupling reactions are evaluated without using sacrificial oxidants. Vital to the success of this methodology is the nucleophile-assisted activation of aryldiazonium salts, which could be an effective oxidant for converting Au(i) to Au(iii) even without the addition of an assisting ligand or photocatalyst. By accelerating the reaction kinetics to outcompete C-C homo-coupling or diazonium dediazoniation, gold-catalyzed Sandmeyer reactions were achieved with different nucleophiles, forming C-Br, C-S and C-P bonds in high yields and selectivities.Entities:
Year: 2016 PMID: 30034759 PMCID: PMC6024175 DOI: 10.1039/c6sc01742h
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Scheme 1Gold redox catalysis.
Fig. 1Monitoring the reaction of 1a and PPh3AuCl with 31P NMR.
Scheme 2Proposed Ar–Nu coupling with gold-redox catalysis.
Exploring the reaction conditions
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| Entry | Variations from above conditions | Time | Conv. (%) |
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| 1 | None | 5 h | 100 | 83 | 7 | <5 |
| 2 | Blue LED, No Ph3PAuCl | 12 h | 50 | <10 | Trace | 33 |
| 3 | LiBr instead of NaBr | 12 h | 100 | 78 | 8 | <5 |
| 4 | Acetone instead of ACN | 5 h | 100 | 11 | 37 | <5 |
| 5 | Ph3PAuNTf2 instead of Ph3PAuCl | 5 h | 100 | 68 | 10 | 7 |
| 6 | Ph3PAuNTf2 and 20 mol% bpy | 12 h | 100 | 63 | 8 | 15 |
| 7 | 3 mol% Ph3PAuCl | 5 h | 100 | 81 | 7 | <5 |
| 8 | 1 mol% Ph3PAuCl | 5 h | 100 | 63 | 13 | 9 |
| 9 | No light (darkness) | 5 h | 100 | 76 | 8 | <5 |
Reaction conditions: 1 (0.1 mmol), NaBr (0.4 mmol), cat. Au (5 mol%) in acetonitrile (ACN), 50 °C.
19F NMR yield with benzotrifluoride as the internal standard.
Catalytic Ar–Br cross coupling reaction scope
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Reaction conditions: 1 (0.2 mmol), NaBr (0.8 mmol), PPh3AuCl (3 mol%) in acetonitrile (ACN), 50 °C, 5 h.
Isolated yield.
Determined using 19F NMR with benzotrifluoride as the internal standard.
Determined using GC-MS with decane as the internal standard.
LiBr (1.0 mmol) instead of NaBr.
Fig. 2Evidence of an Au(iii) intermediate from ESI-MS.
Gold catalyzed C–S bond formation
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| Catalyst (mol%) | Base (equiv.) | Time | Conv. (%) |
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| None | None | 24 h | 30 | 0 | 23 |
| None | Na2CO3 (2) | 10 h | 100 | 37 | 55 |
| Cu(OAc)2 (100) | Na2CO3 (2) | 10 h | 100 | 31 | 65 |
| PPh3AuCl (5) | None | 10 h | 55 | 49 | 38 |
| PPh3AuCl (5) | Na2CO3 (2) | 3 h | 100 | 87 | 8 |
| PPh3AuCl (3) | Na2CO3 (2) | 3 h | 100 | 86 | 7 |
| PPh3AuCl (1) | Na2CO3 (2) | 7 h | 100 | 53 | 30 |
Reaction conditions: 1a (0.2 mmol), 6a (0.1 mmol), cat. (5 mol%), Na2CO3 (0.2 mmol) in acetonitrile (ACN), rt.
19F NMR yield with benzotrifluoride as the internal standard.
C–S cross-coupling reaction scope
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Reaction conditions, C–S formation: 1 (0.4 mmol), 6 (0.2 mmol), PPh3AuCl (3 mol%), Na2CO3 (0.4 mmol) in acetonitrile (ACN), rt, 3 h.
Isolated yield.
Determined using 1H NMR with 1,3,5-trimethoxybenzene as the internal standard with E/Z selectivity of 1 : 1.
Ligand-assisted gold-catalyzed C–P bond formation
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| Catalyst (mol%) | Additives (equiv.) | Time | Conv. (%) |
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| None | None | 10 h | 50 | 0 | 31 | 0 |
| None | Na2CO3 (2) | 10 h | 100 | 0 | 70 | 0 |
| Cu(OAc)2 (100) | Na2CO3 (2) | 10 h | 100 | 0 | 75 | 0 |
| PPh3AuCl (5) | None | 10 h | 50 | 25 | 13 | 0 |
| PPh3AuCl (5) | Na2CO3 (2) | 10 h | 100 | 11 | 38 | 0 |
| PPh3AuNTf2 (5) | bpy (0.2), Na2CO3 (2) | 10 h | 100 | <5 | 53 | 11 |
| PPh3AuCl (5) | 3-Cl-py (2) | 3 h | 100 | 83 | 7 | 0 |
| PPh3AuNTf2 (5) | 3-Cl-py (2) | 3 h | 100 | 70 | 15 | 0 |
| None | 3-Cl-py (2) | 10 h | 69 | 0 | 5 | 44 |
| None | 3-Cl-py (2) | 10 h | >90 | 0 | 25 | 4 |
Reaction conditions: 1a (0.2 mmol), HP(O)(OEt)2 (0.1 mmol), cat. (5 mol%), base (0.2 mmol) in acetonitrile (ACN), 50 °C.
19F NMR yield with benzotrifluoride as the internal standard.
ACN : EtOH = 6 : 1.
Room temperature.21
Catalytic C–P cross-coupling reaction scope
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Reaction conditions, 1 (0.4 mmol), HP(O)(OEt)2 (0.2 mmol), PPh3AuCl (5 mol%), 3-Cl-Py (0.4 mmol) in acetonitrile (ACN), 50 °C, 5 h.
Isolated yield.
Determined using 1H NMR with 1,3,5-trimethoxybenzene as the internal standard.