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Palladium carbon-oxygen bond formation

The Tsuji-Trost-type reaction is applicable to bifunctional vinyl epoxide 144 and 1,3-diketone using a palladium catalyst as demonstrated by Koizumi, who obtained polymer 145 (Equation (67)). The reaction proceeds at 0 °C to a reflux temperature of THE. The resulting polymer 145 is isolated in a quantitative yield. The molecular weight of 145 is ca. 3000 (PDI = 2.0-2.7) when 5 mol% of Pd(PPh3)4 is employed as a catalyst. Use of Pd2(dba)3 with several bidentate phosphines such as dppe, dppp, dppb, and dppf is also effective for the polymerization reaction. Propargyl carbonate 146 also reacts with bisphenols in the presence of a palladium catalyst to afford polyethers 147 via carbon-oxygen bond formation at s - and r/) -carbon atoms (Equation (68)). [Pg.677]

The formation of oxygen heterocycles through carbon-oxygen bond formation was also reported. Substituted 2-(o-halophenyl)-ethanols were converted to dihydrobenzofuranes using palladium and Buchwald s bulky biaryl-type ligands (3.43.). The reaction was also efficient in the formation of six and seven membered oxygen heterocycles.53... [Pg.45]

C-M bond addition, for C-C bond formation, 10, 403-491 iridium additions, 10, 456 nickel additions, 10, 463 niobium additions, 10, 427 osmium additions, 10, 445 palladium additions, 10, 468 rhodium additions, 10, 455 ruthenium additions, 10, 444 Sc and Y additions, 10, 405 tantalum additions, 10, 429 titanium additions, 10, 421 vanadium additions, 10, 426 zirconium additions, 10, 424 Carbon-oxygen bond formation via alkyne hydration, 10, 678 for aryl and alkenyl ethers, 10, 650 via cobalt-mediated propargylic etherification, 10, 665 Cu-mediated, with borons, 9, 219 cycloetherification, 10, 673 etherification, 10, 669, 10, 685 via hydro- and alkylative alkoxylation, 10, 683 via inter- andd intramolecular hydroalkoxylation, 10, 672 via metal vinylidenes, 10, 676 via SnI and S Z processes, 10, 684 via transition metal rc-arene complexes, 10, 685 via transition metal-mediated etherification, overview,... [Pg.76]

Palladium-Catalyzed Carbon-Oxygen Bond Formation... [Pg.177]

The palladium catalysed conversion of alkenes to enols, also known as the Wacker reaction, has also been used in the formation of oxygen heterocycles. In the example shown in 3.68. the subsequent formation of two carbon-oxygen bonds leads to the desired dioxabicyclo[3.2.1]octane derivative. The first Wacker reaction gives selectively a six membered ring formation (other possible routes would lead to even larger rings), while in the second Wacker reaction the selective formation of the five membered ring is observed.86... [Pg.54]

The exchange of a halogen to a classical nitrogen or oxygen nucleophile usually proceeds readily on the purine skeleton, without the necessity of using a transition metal catalyst. There are certain cases, however, where the palladium catalyzed carbon-heteroatom bond formation might take preference over noncatalysed methods. Inosine derivatives, for example,... [Pg.190]

The palladium-catalyzed synthesis of functionalized indoles through intramolecular nitrogen-carbon(sp ) bond formation has been reported (Scheme 3.55) [61], This was an oxidative cycloisomerization process, and the authors found that molecular oxygen (1 atm) was an effective oxidant for the process. The substrate scope for this reaction was quite... [Pg.156]

The palladium catalyzed iminoannulation and carboxyannulation of alkynes and an appropriate aryl/vinyl halide is an efficient tool to construct six membered nitrogen and oxygen heterocycles. The process encompasses the concomitant formation of a carbon-carbon and a carbon-heteroatom bond. [Pg.80]

The last example focuses not on the functionalization of heterocycles by a transition metal mediated carbon-heteroatom bond forming reaction, but the palladium catalyzed conversion of primary amines, including amino-heterocycles, into urea derivatives. A representative example, shown in 8.38., includes the reaction of an amino-carbazole derivative with morpholine, carbon monoxide and oxygen in the presence of catalytic amounts of palladium(II) iodide. The formation of the urea moiety proceeds with great selectivity and in high yield.49 The reaction works equally well for primary aliphatic and aromatic amines. [Pg.191]


See other pages where Palladium carbon-oxygen bond formation is mentioned: [Pg.370]    [Pg.23]    [Pg.74]    [Pg.91]    [Pg.104]    [Pg.155]    [Pg.129]    [Pg.9]    [Pg.137]    [Pg.89]    [Pg.127]    [Pg.127]    [Pg.185]    [Pg.303]    [Pg.391]    [Pg.946]    [Pg.129]    [Pg.261]    [Pg.5]    [Pg.213]    [Pg.176]    [Pg.38]    [Pg.913]    [Pg.176]    [Pg.55]    [Pg.25]    [Pg.573]    [Pg.12]    [Pg.288]    [Pg.288]    [Pg.399]    [Pg.910]    [Pg.306]    [Pg.913]    [Pg.74]    [Pg.664]    [Pg.49]    [Pg.399]   
See also in sourсe #XX -- [ Pg.177 ]




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Carbon oxygenated

Carbon oxygenation

Carbon-oxygen bond

Oxygen Palladium

Oxygen, formation

Oxygenates formation

Palladium bonding

Palladium carbonates

Palladium-Catalyzed Carbon-Oxygen Bond Formation

Palladium-oxygen bond

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