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Allenic amines, synthesis

IH of allenic amines also occurs in the presence of silver salts. IH of a-allenic amines proceeds in good yields in the presence of AgBp4 and provides a useful method for 3-pyrrolines synthesis via Endo-Trig processes (Eq. 4.93) [314]. [Pg.129]

Although less efficient (TOP = 0.04 h ), similar IH ofofy- and 5-allenic amines in the presence of AgNOj give 2-alkenylpyrrolidines and 2-alkenylpiperidines, respectively (5 [or 6]-Exo-Trig processes) [315]. These reactions have been applied to the synthesis of ( )-pinidine [316] and -) R) coniine [317]. [Pg.130]

Sahlberg, C. and Claesson, A.. Allenes and acetylenes. XXIV. Synthesis of a-allenic amines by organocuprate reactions of acetylenic aminoethers. Acta Chem. Scand., B.36. 179, 1982. [Pg.84]

Catalysts. Silver and silver compounds are widely used in research and industry as catalysts for oxidation, reduction, and polymerization reactions. Silver nitrate has been reported as a catalyst for the preparation of propylene oxide (qv) from propylene (qv) (58), and silver acetate has been reported as being a suitable catalyst for the production of ethylene oxide (qv) from ethylene (qv) (59). The solubility of silver perchlorate in oiganic solvents makes it a possible catalyst for polymerization reactions, such as the production of butyl acrylate polymers in dimethylformamide (60) or the polymerization of methacrylamide (61). Similady, the solubility of silver tetrafluoroborate in oiganic solvents has enhanced its use in the synthesis of 3-pyrrolines by the cyclization of allenic amines (62). [Pg.92]

The well-established synthesis of allenes by the substitution reaction of cuprates with propargylsulphonates has been applied to the preparation of the a-allenic amines (268), by the addition of the new cuprate (266) to the sulphonates (265). Subsequent hydrolysis of the imine (267) with oxalic acid gives the amines (268), and although yields are only moderate (20—50%), the method has the... [Pg.39]

The preparation of the optical antipodes of a-aminopropiophenone from norephedrine and an improved large-scale resolution of norephedrine have been described. The stereoselective synthesis of diastereomeric amino-alcohols from chiral aminocarbonyl compounds by reduction or by addition of organometallic reagents has been reviewed, and syntheses of a-allenic amines and allenic amino-alcohols have been reported. [Pg.202]

The addition of secondary amines to acetylenes is most applicable to the synthesis of conjugated acyclic enamines (50,171,172). Particularly the addition to acetylenic esters and sulfones has been investigated (173-177) and it appears that an initial trans addition is followed by isomerization to more stable products where the amine and functional group are in a trans orientation (178). Enamines have also been obtained by addition of secondary amines to allenes (179). [Pg.332]

Several Pd-catalyzed domino processes start with a Tsuji-Trost reaction, a pal-ladation of alkynes or allenes [5], a carbonylation [6], an amination [7] or a Pd(II)-cat-alyzed Wacker-type reaction [8]. A novel illustrious example of this procedure is the efficient enantioselective synthesis of vitamin E [9]. [Pg.359]

As mentioned in the Introduction, this chapter focuses on reactions that deliver allenes as the product. The principles discussed in Sections 1.2.1-1.2.9, of course, also allow the synthesis of allenes as reactive intermediates, which due to other functional groups that are present, undergo further reactions in situ. The most important examples here are base-catalyzed isomerizations to furans [347, 348] ring transfer reactions of propargylic ethers or amines [216, 349-371] and enyneallene cycliza-tion reactions starting from propargylic sulfones [372-375] and related substrates [376, 377]. Details are discussed, for example, in Chapters 16 and 20. [Pg.27]

Based on nucleophilic addition, racemic allenyl sulfones were partially resolved by reaction with a deficiency of optically active primary or secondary amines [243]. The reversible nucleophilic addition of tertiary amines or phosphanes to acceptor-substituted allenes can lead to the inversion of the configuration of chiral allenes. For example, an optically active diester 177 with achiral groups R can undergo a racemization (Scheme 7.29). A 4 5 mixture of (M)- and (P)-177 with R = (-)-l-menthyl, obtained through synthesis of the allene from dimenthyl 1,3-acetonedicar-boxylate (cf. Scheme 7.18) [159], furnishes (M)-177 in high diastereomeric purity in 90% yield after repeated crystallization from pentane in the presence of catalytic amounts of triethylamine [158], Another example of a highly elegant epimerization of an optically active allene based on reversible nucleophilic addition was published by Marshall and Liao, who were successful in the transformation 179 — 180 [35], Recently, Lu et al. published a very informative review on the reactions of electron-deficient allenes under phosphane catalysis [244]. [Pg.383]

Similarly, an efficient procedure of general applicability was described for the synthesis of propargylamines by copper(I)-catalyzed amination of bromoal-lenes [75], It should be mentioned that by use of an enantioenriched allene 142 (R1 = nPr, R2 = Me), the optical purity was completely transferred to alkyne 143 (R3 = nBu) [73],... [Pg.871]

Shimizu and Tsuji [4] reported the first highly regioselective synthesis of 1,2-di-substituted allylic amines through capture of a Jt-allylpalladium complex by pyrrolidine (Scheme 16.2). This methodology has since been extended to a wide range of amines and allenes [5]. [Pg.926]

The reaction was further applied to the synthesis of spiro heterocycles (Scheme 16.4) [8], The oxidative addition of an iodide to a Pd(0) species generates an ArPdl species, into which an internal olefin inserts to form an alkylpalladium complex otherwise difficult to access. Allene participates in the reaction at this stage to provide a jt-allylpalladium complex, which is attacked by the amine intramolecularly to afford the procuct. [Pg.926]

Abstract The basic principles of the oxidative carbonylation reaction together with its synthetic applications are reviewed. In the first section, an overview of oxidative carbonylation is presented, and the general mechanisms followed by different substrates (alkenes, dienes, allenes, alkynes, ketones, ketenes, aromatic hydrocarbons, aliphatic hydrocarbons, alcohols, phenols, amines) leading to a variety of carbonyl compounds are discussed. The second section is focused on processes catalyzed by Pdl2-based systems, and on their ability to promote different kind of oxidative carbonylations under mild conditions to afford important carbonyl derivatives with high selectivity and efficiency. In particular, the recent developments towards the one-step synthesis of new heterocyclic derivatives are described. [Pg.244]

Bis(phosphoranimine) ligands, chromium complexes, 5, 359 Bis(pinacolato)diboranes activated alkene additions, 10, 731—732 for alkyl group functionalization, 10, 110 alkyne additions, 10, 728 allene additions, 10, 730 carbenoid additions, 10, 733 diazoalkane additions, 10, 733 imine additions, 10, 733 methylenecyclopropane additions, 10, 733 Bisporphyrins, in organometallic synthesis, 1, 71 Bis(pyrazol-l-yl)borane acetyl complexes, with iron, 6, 88 Bis(pyrazolyl)borates, in platinum(II) complexes, 8, 503 Bispyrazolyl-methane rhodium complex, preparation, 7, 185 Bis(pyrazolyl)methanes, in platinum(II) complexes, 8, 503 Bis(3-pyrazolyl)nickel complexes, preparation, 8, 80-81 Bis(2-pyridyl)amines... [Pg.66]

Cazes et al. reported the Pd-catalyzed intermolecular hydroamination of substituted allenes using aliphatic amines in the presence of triethylammonium iodide leading to allylic amines [19]. In a way similar to the Pd-catalyzed hydrocarbona-tion reactions we reported that the hydroamination of allenes [20], enynes [21], methylenecyclopropanes [22], and cyclopropene [10] proceeds most probably via oxidative addition of an N-H bond under neutral or acidic conditions to give allylic amines. The presence of benzoic acid as an additive promotes the Pd-medi-ated inter- and intramolecular hydroamination of internal alkynes [23]. Intramolecular hydroamination has attracted more attention in recent years, because of its importance in the synthesis of a variety of nitrogen-containing heterocycles found in many biologically important compounds. The metal-catalyzed intramolecular hydroamination/cyclization of aminoalkenes, aminodienes, aminoallenes, and aminoalkynes has been abundantly documented [23]. [Pg.338]

Palladium-mediated intramolecular aminations onto an allylic alcohol <1998TL5971> or allene <1998TL5421> are reported for the synthesis of piperidines. An intermolecular version of the allene-based reactions has been reported in the synthesis of spiropiperidines (Equation 167) <1998JOC2154>. [Pg.281]

Palladium chemistry has been used in the synthesis of tetrahydroisoquinolines. Different combinations of iodoaryl-amine-alkene can be used in these multicomponent reactions. For example, the metal-mediated o-alkylated/alkenyl-ation and intramolecular aza-Michael reaction (Scheme 109) give moderate yields of heterocycle <2004TL6903>, whereas the palladium-catalyzed allene insertion-nucleophilic incorporation-Michael addition cascade (Equation 172) produces good yields of tetrahydroisoquinolines in 15 examples <2003TL7445> with further examples producing tetrahydroquinolines (Scheme 110) <2000TL7125>. [Pg.285]

Stereocontrolled conjugate addition of lithium dimethylcuprate to the electron deficient 2,3-double bond of allenes 851 leads to 5,6-dihydropyranM-oncs 852 in moderate yield (Equation 343) <2000J(P1)3188>. Similarly, the Ag(l)-catalyzed intramolecular cyclization of the allenic acid 853 is accelerated upon addition of diisopropylethyl-amine to afford the 3,6-dihydropyran-2-one 854, an intermediate during the total synthesis of (—)-malyngolide (Equation 344) <2000JA10470>. [Pg.610]

A ruthenacyclopentane 48 has been proposed as an intermediate in this reaction, after coordination of the allene and enone. Exocyclic /1-hydride elimination led to the 1,3-dienes. This ruthenacycle possessed a o-bound ruthenium allyl, allowing nucleophilic additions by alcohols or amines. Alkylative cycloetherification [29] (Eq. 20) and synthesis of pyrrolidine and piperidine [30] were thus achieved. [Pg.10]

A palladium-catalyzed three-component reaction with 2-iodobenzoyl chloride or methyl 2-iodobenzoate, allene and primary aliphatic or aromatic amines to prepare fV-substituted 4-methylene-3,4-dihydro-1 (27/)-isoquinolin-1 -ones was disclosed <02TL2601>. A synthesis of 1-substituted 1,2,3,4-tetrahydroisoquinolines via a Cp2TiMe2-catalyzed, intramolecular hydroamination/cyclization of aminoalkynes was also reported <02TL3715>. Additionally, a palladium-catalyzed one-atom ring expansion of methoxyl allenyl compounds 79 to prepare compounds 80 that can serve as precursors to isoquinolones was reported <02OL455,02SL480>. [Pg.295]

Applications of organomercuiy compounds in synthesis overwhelmingly concern Markovnikov conversion of alkenes, allenes and cyclopropanes to alcohols, ethers, amines, peroxides and azides by... [Pg.631]


See other pages where Allenic amines, synthesis is mentioned: [Pg.107]    [Pg.107]    [Pg.42]    [Pg.243]    [Pg.96]    [Pg.416]    [Pg.315]    [Pg.386]    [Pg.1054]    [Pg.576]    [Pg.13]    [Pg.409]    [Pg.60]    [Pg.151]    [Pg.378]    [Pg.473]   
See also in sourсe #XX -- [ Pg.577 ]

See also in sourсe #XX -- [ Pg.577 ]




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