| Literature DB >> 31857886 |
Tamae Seo1, Tatsuo Ishiyama1, Koji Kubota1,2, Hajime Ito1,2.
Abstract
The Suzuki-Miyaura cross-coupling reaction is one of the most reliable methods for the construction ofEntities:
Year: 2019 PMID: 31857886 PMCID: PMC6836942 DOI: 10.1039/c9sc02185j
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Scheme 1Olefin-accelerated solid-state cross-coupling reactions using mechanochemistry.
Scheme 2Reactivity difference between liquid and solid aryl bromides in a Suzuki–Miyaura cross-coupling reaction under solvent-free mechanochemical conditions.
Development of olefin-accelerated solid-state Suzuki–Miyaura cross-coupling using mechanochemistry
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Conditions: 1b (0.3 mmol), 2a (0.36 mmol), Pd(OAc)2 (0.009 mmol), DavePhos (0.0135 mmol), CsF (0.9 mmol), H2O (20 μL), and additive (0.12 μL mg–1) in a stainless-steel ball-milling jar (1.5 mL) with a stainless-steel ball (5 mm).
Ligand effect on the reaction between 1b and 2a
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| Entry | Ligand | NMR yield (%) |
| 1 | DavePhos | 97 |
| 2 | XPhos | 65 |
| 3 | RuPhos | 92 |
| 4 | BrettPhos | 92 |
| 5 |
| 82 |
| 6 |
| 70 |
| 7 |
| 50 |
| 8 | Cy3P | 60 |
| 9 | Ph3P | 43 |
| 10 | None | 18 |
Conditions: 1b (0.3 mmol), 2a (0.36 mmol), Pd(OAc)2 (0.009 mmol), ligand (0.0135 mmol), CsF (0.9 mmol), H2O (20 μL), and 1,5-cod (0.12 μL mg–1) in a stainless-steel ball-milling jar (1.5 mL) with a stainless-steel ball (5 mm).
Investigation on the effect of varying the mechanochemical parameters
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| Entry | Frequency (Hz) | Number of balls | Ball size (mm) | NMR yield (%) |
| 1 | 10 | 1 | 5 | 70 |
| 2 | 15 | 1 | 5 | 75 |
| 3 | 20 | 1 | 5 | 70 |
| 4 | 25 | 1 | 5 | 97 |
| 5 | 30 | 1 | 5 | 99 |
| 6 | 25 | 1 | 3 | 90 |
| 7 | 25 | 2 | 5 | 97 |
Conditions: 1b (0.3 mmol), 2a (0.36 mmol), Pd(OAc)2 (0.009 mmol), DavePhos (0.0135 mmol), CsF (0.9 mmol), H2O (20 μL), and 1,5-cod (0.12 μL mg–1) in a stainless-steel ball-milling jar (1.5 mL).
Substrate scope of the olefin-accelerated solid-state organoboron cross-coupling
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Reaction conditions: Pd(OAc)2 (0.009 mmol), DavePhos (0.0135 mmol), 1 (0.3 mmol), 2 (0.36 mmol), CsF (0.9 mmol), H2O (20 μL), 1,5-cod (0.12μL mg–1) in a stainless-steel ball-milling jar (1.5 mL) with a stainless-steel ball (diameter: 5 mm), 25 Hz, 99 min. Isolated yields are shown.
1,5-Cod (0.2 μL mg–1) was used.
The corresponding aryl iodide was used as the substrate.
Reaction conditions: Pd(OAc)2 (0.009 mmol), DavePhos (0.0135 mmol), 1 (0.15 mmol), 2 (0.36 mmol), CsF (0.9 mmol), H2O (20 μL), 1,5-cod (0.2μL mg–1) in a stainless-steel ball-milling jar (1.5 mL) with a stainless-steel ball (diameter: 5 mm), 25 Hz, 99 min.
The corresponding aryl chloride was used as the substrate.
Reaction time: 180 min.
0.2 mmol scale.
Reaction conditions: Pd(OAc)2 (0.036 mmol), DavePhos (0.054 mmol), 1 (0.3 mmol), 2 (4.8 mmol), CsF (3.6 mmol), H2O (80 μL), 1,5-cod (0.2 μL mg–1) in a stainless-steel ball-milling jar (25 mL) with stainless-steel balls (diameter: 4 × 10 mm), 25 Hz, 99 min.
Reaction conditions: Pd(OAc)2 (0.018 mmol), DavePhos (0.027 mmol), 1 (0.3 mmol), 2 (2.4 mmol), CsF (1.8 mmol), H2O (40 μL), 1,5-cod (0.2 μL mg–1) in a stainless-steel ball-milling jar (5 mL) with a stainless-steel ball (diameter: 10 mm), 25 Hz, 180 min.
Reaction conditions: Pd(OAc)2 (0.03 mmol), DavePhos (0.045 mmol), 1 (0.3 mmol), 2 (0.72 mmol), CsF (1.8 mmol), H2O (40 μL), 1,5-cod (0.2 μL mg–1) in a stainless-steel ball-milling jar (5 mL) with a stainless-steel ball (diameter: 10 mm), 25 Hz, 99 min.
Fig. 1Solid-state coupling reaction on the gram scale (for detailed reaction conditions, see the ESI†).
Fig. 2(A) Reaction mixtures after grinding in a ball mill. Aggregation in the ball mill (a) after 99 min in the presence of 1,5-cod, (b) after 99 min in the presence of cyclooctane, and (c) after 99 min in the absence of an additive. TEM images of the palladium nanoparticles in the crude reaction mixtures: (B) after 99 min in the presence of 1,5-cod, (C) after 99 min in the presence of cyclooctane, and (D) after 99 min in the absence of an additive. Scale bar in the TEM images (bottom left): 20 nm.
Fig. 3Analysis of palladium species in the solid-state cross-coupling reaction by solid-state (SS) 31P NMR. SS 31P NMR spectra of (A) DavePhos, (B) the reaction mixtures of 1c and 2b after grinding in a ball mill in the presence of 1,5-cod, and (C) the reaction mixtures of 1c and 2b after grinding in a ball mill in the absence of 1,5-cod.
Scheme 3ESI mass analysis of the reaction mixture of 1c and 2b after grinding in a ball mill in the presence of 1,5-cod. Conditions: 1c (0.3 mmol), 2b (0.36 mmol), Pd(OAc)2 (0.009 mmol), DavePhos (0.0135 mmol), CsF (0.9 mmol), H2O (20 μL), and 1,5-cod (0.12 μL mg–1) in a stainless-steel ball-milling jar (1.5 mL) with a stainless-steel ball (5 mm).
Fig. 4Monitoring the reaction progress between 1h and 2b by PXRD analysis. Conditions: 1h (0.3 mmol), 2b (0.36 mmol), Pd(OAc)2 (0.009 mmol), DavePhos (0.0135 mmol), CsF (0.9 mmol), H2O (20 μL), and 1,5-cod (0.12 μL mg–1) in a stainless-steel ball-milling jar (1.5 mL) with a stainless-steel ball (5 mm).
Fig. 5Proposed reaction mechanism of the solid-state cross-coupling reactions.