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Hydroformylations asymmetric

Scheme 3 Model rhodium-catalyzed asymmetric hydroformylation asymmetric of vinyl... Scheme 3 Model rhodium-catalyzed asymmetric hydroformylation asymmetric of vinyl...
Alkane dehydroeyelization with Pt-Sn-alumina catalysts—Continued pressure effect, 120 PtSn alloy formation, 117-118 role of Sn, 117 Sn vs. carbon deposition, 120 Sn vs. coking, 118-119 Sn vs. n-octane conversion, 120-122 Sn vs. selectivity, 118 temperature effect, 119 Alkene hydroformylation, asymmetric catalysis, 24... [Pg.398]

The enantioselective hydrocyanation of alkenes has the potential to serve as an efficient method to generate optically active nitriles, as well as amides, esters, and amines after functional group interconversions of the nitrile group. As in asymmetric hydroformylation, asymmetric hydrocyanation requires control of both regiochemistry and stereochemistry because simple olefins tend to generate achiral terminal nitrile products. The hydrocyanation of norbomene will give a single constitutional isomer and was studied initially. However, modest enantioselectivities were obtained, and the synthetic value is limited. ... [Pg.674]

Considerable advances in asymmetric hydroformylation, a process which, among other things, provides a potential route to enantiomericaHy pure biologically active compounds, have occurred. Of particular interest are preparations of nonsteroidal antiinflammatory (NSAI) pharmaceuticals such as Naproxen (8) and Ibuprofen (9), where the represents a chiral center. [Pg.471]

Styrene, a-ethyl-asymmetric hydroformylation catalysts, platinum complexes, 6, 266 asymmetric hydrogenation catalysts, rhodium complexes, 6, 250 Styrene, a-methyl-asymmetric carbonylation catalysis by palladium complexes, 6, 293 carbonylation... [Pg.226]

Hydroformylation has been extensively studied since it produces optically active aldehydes which could be important precursors for pharmaceutical and fine chemical compounds. Thus, asymmetric hydroformylation of styrene (Scheme 27) is a model reaction for the synthesis of ibuprofen or naproxen. Phosphorus ligands were used for this reaction with excellent results, espe-... [Pg.249]

Some chiral mono-, acyl- and di-thioureas have been used as ligand for the Rh-catalysed asymmetric hydroformylation of styrene. Although thiourea ligands form inactive systems with [Rh(COD)Cl]2 as the catalyst precursor, in standard conditions (40 °C, 40 bar CO -l- H2 1/1), the cationic Rh complex [Rh(COD)2]Bp4 combined with monothioureas as the ligand showed moderate to good activity (Scheme 29) [114]. [Pg.251]

In 1999, Casado et al. developed heterotetranuclear complexes (TiRh3) depicted in Scheme 10.3 with bridging sullido ligands combined with P-donor ligands. These complexes were further tested as catalysts for the asymmetric hydroformylation reaction of styrene. In this process, [CpTi((/i3-S)3 Rh(tfbb 3] was efficiently active under mild conditions (10 bar, CO/H2 = 1 atm, 353 K). In order to explore the effect of the added phosphorus ligand and the possibilities of this system for the asymmetric hydroformylation of styrene, achiral diphosphines such as dppe (l,2-bis(diphenylphosphine)ethane) and... [Pg.294]

In 2000, better results were obtained by Bonnet et al. by using readily available chiral thioureas as new ligands in the asymmetric rhodium-catalysed hydroformylation of styrene. In general, the conversion of styrene and enantioselectivities were modest, but when the reaction was carried out in heptane as the solvent, an enantioselectivity of 41% ee was obtained (Scheme 10.6). [Pg.296]

The discovery of the bisphospholane scaffold as a new privileged structure for asymmetric induction in alkene hydroformylation has triggered research for new and improved bisphospholane-type ligands. In this context (k,k)-Ph-bpc has been identified as an excellent ligand for asymmetric hydroformylation, which gives state-of-the-art regio- and enantioselectivities... [Pg.160]

The major problem remains control of regioselectivity in favor of the branched regioisomer. While aryl alkenes as well as heteroatom-substituted alkenes favor the chiral branched isomer, for aliphatic alkenes such an intrinsic element of regiocontrol is not available. As a matter of fact branched-selective and asymmetric hydroformylation of aliphatic alkenes stands as an unsolved problem. In this respect regio- and enantioselective hydroformy-... [Pg.161]

The asymmetric hydroformylation of a 1,3-diene has been recently used in the course of a total synthesis of the antifungal natural product ambruticin. The retrosynthesis as well as the hydroformylation key step are depicted in Scheme 25 [75]. [Pg.162]

Although significant progress in the field of asymmetric hydroformylation has been made, it is limited to a rather narrow substrate scope. An alternative approach to a stereoselective hydroformylation might employ substrate control of a chiral alkenic starting material. Of particular use... [Pg.162]


See other pages where Hydroformylations asymmetric is mentioned: [Pg.390]    [Pg.319]    [Pg.390]    [Pg.319]    [Pg.466]    [Pg.184]    [Pg.171]    [Pg.74]    [Pg.95]    [Pg.95]    [Pg.116]    [Pg.121]    [Pg.123]    [Pg.196]    [Pg.198]    [Pg.211]    [Pg.211]    [Pg.226]    [Pg.226]    [Pg.1037]    [Pg.250]    [Pg.268]    [Pg.293]    [Pg.367]    [Pg.368]    [Pg.369]    [Pg.160]    [Pg.163]    [Pg.173]   
See also in sourсe #XX -- [ Pg.43 , Pg.91 ]




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1 -Hexene asymmetric hydroformylation

2,5-Dihydrofuran, asymmetric hydroformylation

Acetic acid asymmetric hydroformylation

Aldehydes asymmetric hydroformylation

Alkene hydroformylation, asymmetric

Alkene hydroformylation, asymmetric catalysis

Allyl cyanide, asymmetric hydroformylation

Amino aldehydes, asymmetric hydroformylation

Asymmetric hydroformylation

Asymmetric hydroformylation

Asymmetric hydroformylation conditions

Asymmetric hydroformylation in aqueous media

Asymmetric hydroformylation, platinum catalysts

Asymmetric hydroformylation, rhodium catalysts

Asymmetric hydroformylation-(Wittig

Asymmetric reactions hydroformylation

Asymmetric synthesis hydroformylation

Binaphos ligands, asymmetric hydroformylation

Butenes asymmetric hydroformylation

Catalysts asymmetric hydroformylation

Chiral compounds asymmetric hydroformylation

Cobalt catalyzed asymmetric hydroformylation

Dienes asymmetric hydroformylation

Enantioselective synthesis asymmetric hydroformylation

Hydroformylation continuous asymmetric

Hydroformylation, asymmetric pressure

Hydroformylation, asymmetric solvents

Lactams asymmetric hydroformylation

Lactones asymmetric hydroformylation

Mechanism of Asymmetric Hydroformylation Reaction

Naproxen asymmetric hydroformylation

Non-asymmetric hydroformylation

Phosphine ligands asymmetric hydroformylation

Platinum complexes asymmetric hydroformylation

Rhodium complexes asymmetric hydroformylation

Rhodium-Catalyzed Asymmetric Hydroformylation of Styrene

Scaffolding asymmetric hydroformylation

Stereochemistry asymmetric hydroformylation

Steroids asymmetric hydroformylation

Styrene asymmetric hydroformylation

Substrate control asymmetric hydroformylation

Vinyl arenes, asymmetric hydroformylation

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