| Literature DB >> 30631071 |
Koji Kubota1, Tamae Seo2, Katsumasa Koide2, Yasuchika Hasegawa2,3, Hajime Ito4,5.
Abstract
Palladium-catEntities:
Year: 2019 PMID: 30631071 PMCID: PMC6328594 DOI: 10.1038/s41467-018-08017-9
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Fig. 1Overview of the olefin-accelerated solid-state couplings using mechanochemistry. a Current application range of palladium-catalyzed cross-coupling reactions. b General and scalable solid-state C–N cross-coupling reactions using olefin additives as molecular dispersants. c A proposed acceleration mechanism, wherein olefin additives could act as dispersants for catalysts in solid-state media and facilitate the solid-state cross-coupling
Fig. 2Comparison of the reactivity of liquid and solid aryl bromides. aThe following reaction conditions[51] were used: 0.6 mmol of 1; 0.5 mmol of 2a; 0.01 mmol of Pd(OAc)2; 0.02 mmol of XPhos (P1); 1.0 mmol of Na(O-t-Bu); 2.0 g of NaCl; in a stainless-steel ball-milling jar (25 mL) with two stainless-steel balls (15 mm); 30 Hz; 99 min. bThe following reaction conditions were used: 0.5 mmol of 1; 0.5 mmol of 2a; 0.025 mmol of Pd(OAc)2; 0.025 mmol of ligand; 0.75 mmol of Na(O-t-Bu); in a stainless-steel ball-milling jar (1.5 mL) with a stainless-steel ball (3 mm); 30 Hz; 99 min
Fig. 3Development of olefin-accelerated solid-state C–N cross-coupling reactions. a Comparison of phosphine ligands and LAG additives in solid-state C–N cross-coupling reactions. b Discovery of olefins as molecular dispersants for palladium catalysts. Unless otherwise noted, the following reaction conditions were used: 0.5 mmol of 1b; 0.5 mmol of 2a; 0.025 mmol of Pd(OAc)2; 0.025 mmol of ligand; 0.75 mmol of Na(O-t-Bu); additive (0.20 μL mg–1); in a stainless-steel ball-milling jar (1.5 mL) with a stainless-steel ball (3 mm); 30 Hz; 99 min. Yields were determined by 1H NMR analysis using an internal standard. a10 mol% Pd(OAc)2 and t-Bu3P (P2) were used. bToluene (0.13 μL mg–1) was used
Fig. 4Reaction mixtures after grinding in a ball mill. Aggregation on the milling ball a after 99 min without additive, b after 99 min with 1,5-cod, and c after 99 min with cyclooctane
Fig. 5TEM images of palladium nanoparticles in the crude reaction mixtures. a Crude mixture after 99 min with 1,5-cod, b crude mixture after 99 min with cyclooctane, and c crude mixture after 99 min without additive. Scale bars in the TEM images (bottom left): 20 nm. These results clearly show that 1,5-cod can act as a molecular dispersant for the palladium catalyst in the solid-state reaction mixture, thus facilitating the solid-state C–N cross-coupling reaction
Fig. 6Substrate scope. Unless otherwise noted, the following reaction conditions were used: 0.5 mmol of 1; 0.5 mmol of 2; 0.025 mmol of Pd(OAc)2; 0.025 mmol of t-Bu3P; 0.75 mmol of Na(O-t-Bu); 1,5-cod (0.20 μL mg–1); stainless-steel ball-milling jar (1.5 mL) with a stainless-steel ball (3 mm); 30 Hz; 99 min. Isolated yields are shown. aThe aryl chloride was used as a substrate. b0.3 mmol scale. c10 mol% of catalyst and 3.0 equiv of Na(O-t-Bu) were used. d10 mol% of catalyst was used. eA larger stainless-steel ball-milling jar (25 mL) was used with four stainless-steel balls (10 mm). f0.2 mmol scale
Fig. 7Synthetic utility of the solid-state C–N cross-coupling. a Solid-state gram-scale synthesis of 3c. The following conditions were used: 7.0 mmol of 1b; 7.0 mmol of 2c; 0.14 mmol of Pd(OAc)2; 0.14 mmol of t-Bu3P; 10.5 mmol of Na(O-t-Bu); 1,5-cod (0.20 μL mg–1); stainless-steel ball-milling jar (25 mL) with four stainless-steel balls (10 mm); 30 Hz; 99 min. Isolated yield is shown. b Efficient solid-state synthesis of the arylamine-based hole-transporting material 3af. The following conditions were used: 0.5 mmol of 1af; 2.6 mmol of 2d; 0.075 mmol of Pd(OAc)2; 0.075 mmol of t-Bu3P; 3.0 mmol of Na(O-t-Bu); 1,5-cod (0.20 μL mg–1); stainless-steel ball-milling jar (25 mL) with four stainless-steel balls (10 mm); 30 Hz; 99 min. Isolated yield is shown
Fig. 8Monitoring the reaction progress by PXRD analysis. After 60 min, the diffraction peaks derived from the starting materials completely disappear, while those associated with coupling product 3b and NaBr emerge, which suggests a clean solid-to-solid conversion without melting during the reaction
Fig. 9The kinetic study. a The kinetics of the reaction in the presence of 1,5-cod were found to be relatively straightforward (modeled as simple first order). This result suggests that the observed acceleration effect should not stem from changes in the rheology. b Dramatical changes in the physical form of the reaction mixtures containing 1,5-cod were not observed as the reaction progressed