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Amines, allyl

Chlorohydrin 61 is formed by the nucleophilic addition to ethylene with PdCl2 and CuCl2[103,104]. Regioselective chlorohydroxylation of the allylic amine 62 is possible by the participation of the heteroatom to give chlorohydrin 63. Allylic sulfides behave similarly[105]. [Pg.30]

Addition of several organomercury compounds (methyl, aryl, and benzyl) to conjugated dienes in the presence of Pd(II) salts generates the ir-allylpalladium complex 422, which is subjected to further transformations. A secondary amine reacts to give the tertiary allylic amine 423 in a modest yield along with diene 424 and reduced product 425[382,383]. Even the unconjugated diene 426 is converted into the 7r-allyllic palladium complex 427 by the reaction of PhHgCI via the elimination and reverse readdition of H—Pd—Cl[383]. [Pg.82]

Allylic amines are coupled to halides giving either allylic amines or enamines depending on the reaction condition. Reaction of steroidal dienyl triflate with Boc-diprotected allylamine affords allylamine. Use of AcOK as a base is crucial for the clean coupling[102]. The tert-allylic amine 123 reacts with an aryl halide to give the enamine 125 in DMF and allylic amine 124 in nonpolar solvents[103]. [Pg.145]

When allene derivatives are treated with aryl halides in the presence of Pd(0), the aryl group is introduced to the central carbon by insertion of one of the allenic bonds to form the 7r-allylpalladium intermediate 271, which is attacked further by amine to give the allylic amine 272. A good ligand for the reaction is dppe[182]. Intramolecular reaction of the 7-aminoallene 273 affords the pyrrolidine derivative 274[183]. [Pg.166]

Allylic amine is a less reactive leaving group[7], but the allylic ammonium salts 214 (quaternary ammonium salts) can be used for allylalion(l30,131]. Allylic sulfonium salts are also used for the allylation[130]. The allylic nitrile in the cyclic aminonitrile 215 can be displaced probably via x-allylic complex formation. The possibility of the formation of the dihydropyridinium salts 216 and subsequent conjugate addition are less likelyfl 32],... [Pg.319]

Some nucleophiles other than carbon nucleophiles are allylated. Amines are good nucleophiles. Diethylamine is allylated with allyl alcohol[7]. Allylammes are formed by the reaction of allyl alcohol with ammonia by using dppb as a ligand. Di- and triallylamines are produced commercially from allyl alcohol and ammonia[l74]. [Pg.329]

The reaction of the vinylcyclopropanedicarboxylate 301 with amines affords an allylic amine via the 7r-allylpalladium complex 302[50]. Similarly, three-membered ring A -tosyl-2-(l,3-butadienyl)aziridine (303) and the four-mem-bered ring azetidine 304 can be rearranged to the five- and six-membered ring unsaturated cyclic amines[183]. [Pg.331]

The reaction of an azide[185,186] or a trimethylsilylazide(I87] followed by the treatment with Ph3P is another preparative method for the primary allylic amine 307. [Pg.332]

Hydroxylysine (328) was synthesized by chemoselective reaction of (Z)-4-acet-oxy-2-butenyl methyl carbonate (325) with two different nucleophiles first with At,(9-Boc-protected hydroxylamine (326) under neutral conditions and then with methyl (diphenylmethyleneamino)acetate (327) in the presence of BSA[202]. The primary allylic amine 331 is prepared by the highly selective monoallylation of 4,4 -dimethoxybenzhydrylamine (329). Deprotection of the allylated secondary amine 330 with 80% formic acid affords the primary ally-lamine 331. The reaction was applied to the total synthesis of gabaculine 332(203]. [Pg.334]

Allylamines are not easily cleaved with Pd catalysts, but the carbonylation of the allylic amine 395 proceeds at 110 C to give the /3,7-unsaturated amide 396 by using dppp as a ligand[252], Dccarboxylation-carbonylation of allyl diethyl-carbamate under severe conditions (100 C, 80 atm) affords /3,7-unsaturated amides[2531. The 3-vinylaziridine 397 is converted into the a-vinyl-J-lactam 398 under mild conditions[254]. [Pg.343]

Allylic amines can be cleaved. Hydrogenolysis of allylic amines of different stereochemistry with NaBH CN was applied to the preparation of both dia-stereoisomers 655 and 657 of cyclopentenylglycine from the cyclic amines 654 and 656 of different stereochemistry[405]. [Pg.379]

Amines Methylamine Dimethylamine Ethylamine Diethylamine Propylamine Dipropylamine Isopropylamine Diisopropylamine Butylamine ferf-Butylamine Allyl amine Cyclohexylamine... [Pg.375]

Allyl amine Allyl cyanide Allyl ether Allyl halide Amines... [Pg.1029]

Selenium diimides react in a manner similar to SeOa with unsaturated organic compounds. The first report of BuN=Sc=N Bu described its use as an in situ reagent for allylic amination of olefins and acetylenes. Improved procedures for this process (Eq. 10.5) and for the diamination of 1,3-dienes (Eq. 10.6) have been developed using the reagents RN=Se=NR [R = para-toluenesulfonyl (Ts), ort/io-nitrobenzenesulfonyl (Ns)]. ... [Pg.193]

Aromatic enamines were prepared by dehydroha logenation of /3-bromo-amines with strong base. While trans enamines were thus formed, one obtained mostly cis enamines from rearrangement of the corresponding allylic amines under similar reaction conditions (646). Vicinal endiamines were obtained from S-dichloroamines and lithium amides (647). [Pg.339]

The formation of an enamine from an a,a-disubstituted cyclopentanone and its reaction with methyl acrylate was used in a synthesis of clovene (JOS). In a synthetic route to aspidospermine, a cyclic enamine reacted with methyl acrylate to form an imonium salt, which regenerated a new cyclic enamine and allowed a subsequent internal enamine acylation reaction (309,310). The required cyclic enamine could not be obtained in this instance by base isomerization of the allylic amine precursor, but was obtained by mercuric acetate oxidation of its reduction product. Condensation of a dihydronaphthalene carboxylic ester with an enamine has also been reported (311). [Pg.362]

Cp2Zr H2O, 50-98% yield. Allyl ethers are cleaved faster than allyl-amines that are also cleaved (66%)." ... [Pg.71]

Pd(Ph3P)4, RS02Na, CH2CI2 or THF/MeOH, 70-99% yield. These conditions were shown to be superior to the use of sodium 2-ethylhexanoate. Methallyl, allyl, crotyl, and cinnamyl ethers, the Alloc group, and allyl-amines are all efficiently cleaved by this method. ... [Pg.411]

Pd(dba)DPPB, 2-thiobenzoic acid, THF, 70-100% yield.Tertiary allyl-amines are cleaved efficiently at 20°, but secondary allylamines require heating to 60° to achieve cleavage. Thus, it is possible to monodeallylate a diallylamine by running the cleavage at 20°. "... [Pg.575]

Perhaps the most successful industrial process for the synthesis of menthol is employed by the Takasago Corporation in Japan.4 The elegant Takasago Process uses a most effective catalytic asymmetric reaction - the (S)-BINAP-Rh(i)-catalyzed asymmetric isomerization of an allylic amine to an enamine - and furnishes approximately 30% of the annual world supply of menthol. The asymmetric isomerization of an allylic amine is one of a large and growing number of catalytic asymmetric processes. Collectively, these catalytic asymmetric reactions have dramatically increased the power and scope of organic synthesis. Indeed, the discovery that certain chiral transition metal catalysts can dictate the stereo-... [Pg.343]

The isomerization of an allylic amine to an enamine by means of a formal 1,3-hydrogen shift constitutes a relatively small structural change. However, this transformation could be extremely valuable if it could be rendered stereoselective. In important early studies, Otsuka and Tani showed that a chiral cobalt catalyst, prepared in situ from a Co(ii) salt, a chiral phosphine, and diisobutylaluminum hydride (Dibal-H), can bring about the conversion of certain pro-chiral olefins to chiral, isomeric olefins by double bond migra-... [Pg.348]

The disclosure, in 1982, that cationic, enantiopure BINAP-Rh(i) complexes can induce highly enantioselective isomerizations of allylic amines in THF or acetone, at or below room temperature, to afford optically active enamines in >95 % yield and >95 % ee, thus constituted a major breakthrough.67-68 This important discovery emerged from an impressive collaborative effort between chemists representing Osaka University, the Takasago Corporation, the Institute for Molecular Science at Okazaki, Japan, and Nagoya University. BINAP, 2,2 -bis(diphenylphosphino)-l,l -binaphthyl (Scheme 7), is a fully arylated, chiral diphosphine which was introduced in... [Pg.349]

Scheme 7. Stereochemical outcome of BINAP-Rh(i)-catalyzed asymmetric isomerization of allylic amines. Scheme 7. Stereochemical outcome of BINAP-Rh(i)-catalyzed asymmetric isomerization of allylic amines.
We now turn to the Takasago Process for the commercial synthesis of (-)-menthol (1),4 one of the most successful industrial applications of catalytic asymmetric synthesis. This exquisite synthesis is based on the BINAP-Rh(i)-catalyzed enantioselecdve isomerization of allylic amines, and has been in operation for the commercial production of (-)-menthol since 1984. [Pg.352]

Remote olefins are maintained in BINAP-Rh(l)-catalyzed allylic amine isomerizations 1. (CH3)2CO, aq. NaOH (aldol condensatlon/dehydratlon) 2. H2, Pt/C... [Pg.353]

Remote hydroxyl groups are compatible with BINAP-Rh(l)-catalyzed allylic amine isomerizations... [Pg.353]

The first of the nudeophilic ring-opening reactions of vinylaziridines discussed in this section is diborane reduction, developed by Laurent and coworkers in 1976 (Scheme 2.24). Treatment of N-unsubstituted vinylaziridines 89 with B2H6 gives allyl amines 92 by SN2 reduction via cyclic intermediates 90 [40]. In contrast, treatment with 9-BBN gives 2-(hydroxyethyl)aziridines 93 after oxidative workup (Scheme 2.25) [41]. [Pg.48]


See other pages where Amines, allyl is mentioned: [Pg.95]    [Pg.357]    [Pg.30]    [Pg.77]    [Pg.77]    [Pg.199]    [Pg.196]    [Pg.255]    [Pg.10]    [Pg.320]    [Pg.333]    [Pg.341]    [Pg.348]    [Pg.350]    [Pg.351]    [Pg.352]    [Pg.352]    [Pg.355]    [Pg.355]    [Pg.355]    [Pg.789]    [Pg.51]    [Pg.51]   
See also in sourсe #XX -- [ Pg.29 ]

See also in sourсe #XX -- [ Pg.10 ]

See also in sourсe #XX -- [ Pg.207 , Pg.208 ]

See also in sourсe #XX -- [ Pg.10 ]




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ALLYLIC AMINES

Allyl Amine Derivatives

Allyl amines asymmetric isomerizations

Allyl amines carbometallation

Allyl amines carbonylation

Allyl amines cyclization

Allyl amines deprotection

Allyl amines isomerization

Allyl amines palladium reactions

Allyl amines preparation

Allyl amines reduction

Allyl amines to enamines

Allyl amines, cyclopropanation

Allyl amines, functionalized Grignard

Allyl amines, functionalized Grignard reactions

Allyl amines, polymerization, chain transfer

Allyl amines, pyridines from

Allyl chloride amine-protecting group

Allyl complexes amines

Allyl esters amine protecting group

Allyl transfer amine protection

Allyl vinyl amines

Allylation of Amines

Allylic Amines and Ethers

Allylic C-H amination

Allylic alcohols amination

Allylic alcohols reductive amination

Allylic amination

Allylic amination

Allylic amination carbon-nitrogen bond formation

Allylic amination diastereoselectivity

Allylic amination enantioselective

Allylic amination mechanism

Allylic amination reactions

Allylic amination, iodine

Allylic amination, palladium-mediated

Allylic amination/ -Stevens rearrangement

Allylic aminations

Allylic aminations

Allylic aminations, crotyl

Allylic aminations, crotyl acetate/piperidine

Allylic aminations, palladium-catalyze

Allylic amine isomerization

Allylic amine isomerization double-bond migration

Allylic amine isomerization kinetics

Allylic amine isomerization mechanism

Allylic amine isomerization rhodium-catalyzed

Allylic amines hydroamination

Allylic amines preparation

Allylic amines synthesis

Allylic amines, deamination

Allylic amines, deprotection

Allylic amines, diene

Allylic amines, dihydroxylation

Allylic amines, trisubstituted

Allylic compounds amines

Allylic substitutions benzyl amines

Allylic/benzylic amines, approaches

Allylically Transposed Amines from Allylic Alcohols 3,7-Dimethyl

Amination asymmetric allylic

Amination of Allyl Alcohols

Amination of allylic alcohols

Amination oxidative allylic

Amination reactions allylic aminations

Amination reactions asymmetric allylation

Amine From allylic alcohol

Amine oxides allyl, -sigmatropic rearrangements

Amine oxides allylic, sigmatropic rearrangement

Amine oxides, allylic, rearrangements

Amine with allyl vinyl ethers

Amines Overman rearrangement, allylic alcohol/amine

Amines allyl esters

Amines allyl from nucleophilic

Amines allylation

Amines allylation

Amines allylic amine synthesis

Amines allylic or benzylic

Amines allylic site selectivity

Amines allylic, reaction with Grignard reagents

Amines allylic, reduction

Amines allylic, reductive cleavage

Amines nitrogen-allylic reactions

Amines, allylic tertiary

Amines, allylic tertiary reduction

Amines, allylic, carbanions

Amines, allylic, carbanions alkylation

Asymmetric Alkylation or Amination of Allylic Esters

Asymmetric Allylic Amination and Alkylation

Asymmetric isomerizations of allyl amines

Asymmetric reactions allyl amine derivatives

Aziridines allylic amines

Benzyl and allyl amines

Carbocyclizations allylic amination

Chiral allylic amines

Chiral allylic amines hydroboration

Chiral compounds allylic amination

Cinchona alkaloids allylic amination

Crotyl acetate, allylic amination

Cyclic allylic amines, oxidation

Diastereoselectivity allyl amine derivatives

Enamines, from allyl amines

Flow allylic amination reaction

Hydroaminomethylation allyl amines

Hydroxy amines allyl alcohol

Intramolecular allylic amination

Iridium-catalyzed asymmetric allylic amination

Isomerization of allylic amines

Masked allylic amines

Metathesis with allyl amines

N-allyl amines

Of allyl amines

Oxidative Allylic Aminations

Oxidative Allylic Oxygenation and Amination

Palladium allylic amination

Palladium catalysts allylic amination

Palladium catalyzed intermolecular allylic amination

Palladium-catalyzed, allylic amination

Piperidine, allylic amination

Primary amines allylic amine synthesis

Protecting groups, allyl-based deprotections amines

Reactions of Allylic Amines

Rearrangement of Allylic Sulfoxides. Selenoxides and Amine Oxides

Reductive amination with allyl amine

Rhodium-Catalyzed Allylic Aminations

Rhodium-Catalyzed Enantioselective Isomerization of Allylic Amines

Rhodium-Catalyzed Nucleophilic Ring Cleaving Reactions of Allylic Ethers and Amines

Ring allyl amines

Ring-closing metathesis, allylic amination

Secondary amines allylic amine synthesis

Sharpless asymmetric epoxidation of allylic amine oxides

Sigmatropic Rearrangements of Allyl Amine Oxides The Meisenheimer Rearrangement

Thiourea allylic amination

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