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Heck asymmetric

Scheme 5.4 Example of a tandem Heck asymmetric dihydroxylation reaction. Scheme 5.4 Example of a tandem Heck asymmetric dihydroxylation reaction.
Scheme 5.11. Tandem Heck-asymmetric dihydroxylation catalyzed by NAP-Mg-PdOs bifunctional catalyst. Scheme 5.11. Tandem Heck-asymmetric dihydroxylation catalyzed by NAP-Mg-PdOs bifunctional catalyst.
Buchwald reported a Pd-catalyzed aryl-Heck asymmetric dearomatization of diaryl amines (Scheme 3, equation 1) [28]. Chianese described an interesting dealkylation en route to a carbazole synthesis (equation 2) [29]. Although the corresponding 2,6-diethyl analogue does not undergo deethylation, the labile cyclized intermediate cannot be isolated, and it undergoes dimerization (60%). [Pg.597]

Asymmetric cyclization using chiral ligands has been studied. After early attempts[142-144], satisfactory optical yields have been obtained. The hexahy-dropyrrolo[2,3-6]indole 176 has been constructed by the intramolecular Heck reaction and hydroaryiation[145]. The asymmetric cyclization of the enamide 174 using (S j-BINAP affords predominantly (98 2) the ( )-enoxysilane stereoisomer of the oxindole product, hydrolysis of which provides the ( l-oxindole aldehyde 175 in 84% yield and 95% ec. and total synthesis of (-)-physostig-mine (176) has been achieved[146]. [Pg.154]

Asymmetric Heck reaction of the conjugated diene 184 and subsequent acetate anion capture of the rr-allylpalladium intermediate afforded 185 in 80% ee. which was converted into the key intermediate 186 for the capnelle-... [Pg.155]

Asymmetric Heck reaction in synthesis of heterocycles 97T7371. [Pg.213]

For the performance of an enantioselective synthesis, it is of advantage when an asymmetric catalyst can be employed instead of a chiral reagent or auxiliary in stoichiometric amounts. The valuable enantiomerically pure substance is then required in small amounts only. For the Fleck reaction, catalytically active asymmetric substances have been developed. An illustrative example is the synthesis of the tricyclic compound 17, which represents a versatile synthetic intermediate for the synthesis of diterpenes. Instead of an aryl halide, a trifluoromethanesul-fonic acid arylester (ArOTf) 16 is used as the starting material. With the use of the / -enantiomer of 2,2 -Z7w-(diphenylphosphino)-l,F-binaphthyl ((R)-BINAP) as catalyst, the Heck reaction becomes regio- and face-selective. The reaction occurs preferentially at the trisubstituted double bond b, leading to the tricyclic product 17 with 95% ee. °... [Pg.157]

In an extension of this work, the Shibasaki group developed the novel transformation 48—>51 shown in Scheme 10.25c To rationalize this interesting structural change, it was proposed that oxidative addition of the vinyl triflate moiety in 48 to an asymmetric palladium ) catalyst generated under the indicated conditions affords the 16-electron Pd+ complex 49. Since the weakly bound triflate ligand can easily dissociate from the metal center, a silver salt is not needed. Insertion of the coordinated alkene into the vinyl C-Pd bond then affords a transitory 7t-allylpalladium complex 50 which is captured in a regio- and stereocontrolled fashion by acetate ion to give the optically active bicyclic diene 51 in 80% ee (89% yield). This catalytic asymmetric synthesis by a Heck cyclization/ anion capture process is the first of its kind. [Pg.576]

Scheme 10. Shibasaki s asymmetric Heck cyclization process. Scheme 10. Shibasaki s asymmetric Heck cyclization process.
In a very recent work, the Pd-catalysed cross-coupling reactions with arenediazonium salts under aerobic conditions in the presence of a chiral monothiourea ligand were reported (Scheme 25) [106]. Even if this Hgand bears four chiral centres, no test in asymmetric Heck-type reaction has been described so far. [Pg.248]

Table 7.2 Chiral NHC-Pd(II) complexes in asymmetric oxidative Heck reaction... Table 7.2 Chiral NHC-Pd(II) complexes in asymmetric oxidative Heck reaction...
Choudary, B.M., Chowdari, N.S., Mahdi, S., Kantam, M.L. (2003) A Trifimctional Catalyst for One-Pot Synthesis of Chiral Diols via Heck Coupling-N-Oxidation-Asymmetric Dihydroxyla-tion Application for the Synthesis of Diltiazem and Taxol Side Chain. Journal of Organic Chemistry, 6S, 1736-1746. [Pg.187]

A novel phosphinito dipeptido ligand series were prepared, and fully characterized. These ligands readily form metal complexes with Pd(H) and Pt(II) precursors. The Pd(II) complexes were investigated for their suitability in asymmetric Heck reaction using 3,4-dihydrofuran as a substrate. [Pg.519]

The Heck reaction has proven to be an extremely useful method for the formation of C-C bond at a vinyl carbon centre. There are numerous reported examples of enantioselctive Pd catalyzed C-C bond forming reactions.10"13 Surprisingly, reports of Heck transformations using amino acid based phosphine, phosphinite ligands are rare. Recently Gilbertson reported a proline derived phosphine-oxozoline ligand in a catalytic asymmetric Heck reaction.5 In this paper we present some novel amino acids derived ligands as part of a catalytic system for use in asymmetric Heck reactions. [Pg.519]

Pd complexes 9-12 were tested for their catalytic behavior in the asymmetric Heck reaction involving the phenylation of 2,3-dihydrofuran (Scheme 3). The results are summarized in Table 2. The two isomeric products of 2-phenyl-2,5-dihydrofuran are formed with varying yields from 80% to 0%. The obtained ee s are high. Complex 12 is shown to be catalytically inactive. The lack of catalysis in complex 12 is rationalized by differences in the steric requirements between the diphenylphosphinites 1-3 (cone angle >140°) and the more sterically hindered cyclohexyl-phosphinite 4 (cone angle >170°) and the resulting stereochemistry on the Pd center. The ligands in complex 12 adopt a... [Pg.521]

Scheme 3 Asymmetric Heck coupling of 3,4-dihydrofuran and iodobenzene in the presence of Pd complexes 9-12 giving a mixture of regio and stereo isomers a) 2(R)-phenyl-2,3-dihydrofuran, b) 2(R)-phenyl-2,5-dihydrofuran c) 2(S)-phenyl-2,3-dihydrofuran d) 2(S)-phenyl-2,5-dihydrofuran. Scheme 3 Asymmetric Heck coupling of 3,4-dihydrofuran and iodobenzene in the presence of Pd complexes 9-12 giving a mixture of regio and stereo isomers a) 2(R)-phenyl-2,3-dihydrofuran, b) 2(R)-phenyl-2,5-dihydrofuran c) 2(S)-phenyl-2,3-dihydrofuran d) 2(S)-phenyl-2,5-dihydrofuran.
The Shibasaki group [27] developed an enantioselective total synthesis of (+)-xes-toquinone (6/1-38) using an asymmetric double Heck reaction with BINAP as chi-... [Pg.362]

Thus, [HRh(C0)(TPPTS)3]/H20/silica (TPPTS = sodium salt of tri(m-sulfophenyl)phopshine) catalyzes the hydroformylation of heavy and functionalized olefins,118-122 the selective hydrogenation of a,/3-unsaturated aldehydes,84 and the asymmetric hydrogenation of 2-(6 -methoxy-2 -naphthyl)acrylic add (a precursor of naproxen).123,124 More recently, this methodology was tested for the palladium-catalyzed Trost Tsuji (allylic substitution) and Heck (olefin arylation) reactions.125-127... [Pg.455]

Scheme 6.53 Asymmetric Heck and hydrogen-transfer reactions. Scheme 6.53 Asymmetric Heck and hydrogen-transfer reactions.
Other enantioselective reactions performed by microwave heating include asymmetric Heck reactions (Scheme 6.53 a) [109] and ruthenium-catalyzed asymmetric hydrogen-transfer processes (Scheme 6.53 b) [110]. [Pg.145]


See other pages where Heck asymmetric is mentioned: [Pg.375]    [Pg.576]    [Pg.824]    [Pg.931]    [Pg.144]    [Pg.206]    [Pg.248]    [Pg.203]    [Pg.263]    [Pg.335]    [Pg.4]    [Pg.233]    [Pg.240]    [Pg.241]    [Pg.293]    [Pg.369]    [Pg.396]    [Pg.185]    [Pg.519]    [Pg.520]    [Pg.522]    [Pg.74]    [Pg.553]    [Pg.569]    [Pg.164]    [Pg.164]   
See also in sourсe #XX -- [ Pg.144 ]

See also in sourсe #XX -- [ Pg.327 ]

See also in sourсe #XX -- [ Pg.537 ]




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2.3- dihydrofuran, asymmetric Heck

2.3- dihydrofuran, asymmetric Heck reactions

Acids asymmetric Heck reactions

Alkene derivatives asymmetric Heck reactions

Asymmetric Heck reaction

Asymmetric Heck reaction , hgand

Asymmetric Heck reaction mechanism

Asymmetric Heck reactions, use

Asymmetric Heck-type reaction

Asymmetric Mizoroki-Heck reaction

Asymmetric catalysis Heck reactions

Asymmetric synthesis Heck reaction

BINAP ligand asymmetric Heck reactions

BINAP, asymmetric Heck reaction

Bases asymmetric Heck reactions

Cascade reactions asymmetric Heck reaction

Catalytic asymmetric Heck reaction

Chiral ligands asymmetric Heck reaction

Diastereoselectivity asymmetric Heck reaction

Dihydrofurans, intermolecular asymmetric Heck

Dihydrofurans, intermolecular asymmetric Heck reactions

Dihydropyrroles, intermolecular asymmetric Heck

Dihydropyrroles, intermolecular asymmetric Heck reactions

Enantioselectivity asymmetric Heck reaction

Halenaquinol, asymmetric Heck reaction

Heck coupling asymmetric

Heck coupling reactions asymmetric

Heck coupling reactions asymmetric arylation

Heck reaction asymmetric cyclization

Heck reaction asymmetric reactions

Heck reaction intramolecular asymmetric

Heck reactions asymmetric intermolecular

Heck tandem asymmetric

Intermolecular reactions asymmetric Heck reaction

Intramolecular asymmetric Heck reactions, decalin

Ligand synthesis asymmetric Heck reactions

Metal asymmetric Heck reaction

Natural products synthesis asymmetric Heck reaction

Oxazoline ligands asymmetric Heck reactions

Phosphinooxazolines, asymmetric Heck

Phosphinooxazolines, asymmetric Heck reactions

Quaternary carbon centers asymmetric Heck reaction

Regioselectivity asymmetric Heck reactions

Sesquiterpenes asymmetric Heck reaction

Solvents asymmetric Heck reactions

The Asymmetric Heck Reaction

The Asymmetric Intramolecular Mizoroki-Heck Reaction in Natural Product Total Synthesis

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