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Allylation complexes

Nickel-allyl complexes prepared from Ni(CO)4 and allyl bromides are useful for the ole-fination of alkyl bromides and iodides (E.J. Corey, 1967 B A.P. Kozikowski, 1976). The reaction has also been extended to the synthesis of macrocycles (E.J. Corey, 1967 C, 1972A). [Pg.42]

Allylic acetoxy groups can be substituted by amines in the presence of Pd(0) catalysts. At substituted cyclohexene derivatives the diastereoselectivity depends largely on the structure of the palladium catalyst. Polymer-bound palladium often leads to amination at the same face as the aoetoxy leaving group with regioselective attack at the sterically less hindered site of the intermediate ri -allyl complex (B.M. Trost, 1978). [Pg.164]

Reactions Involving Pd(II) Compounds and Pd(0) Complexes ic-Allyl complex formation and its reaction with a nucleophile... [Pg.16]

Typical nucleophiles known to react with coordinated alkenes are water, alcohols, carboxylic acids, ammonia, amines, enamines, and active methylene compounds 11.12]. The intramolecular version is particularly useful for syntheses of various heterocyclic compounds[l 3,14]. CO and aromatics also react with alkenes. The oxidation reactions of alkenes can be classified further based on these attacking species. Under certain conditions, especially in the presence of bases, the rr-alkene complex 4 is converted into the 7r-allylic complex 5. Various stoichiometric reactions of alkenes via 7r-allylic complex 5 are treated in Section 4. [Pg.21]

TT-Aliylpalladium chloride reacts with a soft carbon nucleophile such as mal-onate and acetoacetate in DMSO as a coordinating solvent, and facile carbon-carbon bond formation takes place[l2,265], This reaction constitutes the basis of both stoichiometric and catalytic 7r-allylpalladium chemistry. Depending on the way in which 7r-allylpalladium complexes are prepared, the reaction becomes stoichiometric or catalytic. Preparation of the 7r-allylpalladium complexes 298 by the oxidative addition of Pd(0) to various allylic compounds (esters, carbonates etc.), and their reactions with nucleophiles, are catalytic, because Pd(0) is regenerated after the reaction with the nucleophile, and reacts again with allylic compounds. These catalytic reactions are treated in Chapter 4, Section 2. On the other hand, the preparation of the 7r-allyl complexes 299 from alkenes requires Pd(II) salts. The subsequent reaction with the nucleophile forms Pd(0). The whole process consumes Pd(ll), and ends as a stoichiometric process, because the in situ reoxidation of Pd(0) is hardly attainable. These stoichiometric reactions are treated in this section. [Pg.61]

Treatment of 7r-allylpalladium chloride with CO in EtOH affords ethyl 3-butenoate (321)[284]., 3, y-Unsaturated esters, obtained by the carbonylation of TT-allylpalladium complexes, are reactive compounds for 7r-allyl complex formation and undergo further facile transformation via 7r-allylpalladium complex formation. For example, ethyl 3-butenoate (321) is easily converted into 1-carboethoxy-TT-allylpalladium chloride (322) by the treatment with Na PdCL in ethanol. Then the repeated carbonylation of the complex 322 gives ethyl 2-... [Pg.64]

When butadiene is treated with PdCU the l-chloromethyl-7r-allylpalladium complex 336 (X = Cl) is formed by the chloropalladation. In the presence of nucleophiles, the substituted 7r-methallylpalladium complex 336 (X = nucleophile) is formed(296-299]. In this way, the nucleophile can be introduced at the terminal carbon of conjugated diene systems. For example, a methoxy group is introduced at the terminal carbon of 3,7-dimethyl-I,3,6-octatriene to give 337 as expected, whereas myrcene (338) is converted into the tr-allyl complex 339 after the cyclization[288]. [Pg.66]

Two monomeric and dimeric 2-substituied 7r-allylic complexes (548 and 549) are obtained by treatment of allene with PdCl2(PhCN)2. They are formed by the nucleophilic attack at the central carbon of allene[493, 494],... [Pg.102]

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]

The intramolecular insertion of a conjugated diene into 7r-allylpalladium, initially formed in 789, generates another rr-allyl complex 790, which is trapped with acetate anion to give a new allylic acetate 791. No further reaction of the allylic acetate with alkene takes place[489]. [Pg.399]

C-Allyl Complex Formation. AHyl hahde, aHyl ester, and other aHyl compounds undergo oxidative addition reactions with low atomic valent metal complexes to form TT-aHyl complexes. This is a specific reaction of aHyl compounds. [Pg.76]

Allyl Complexes. Allyl complexes of thorium have been known since the 1960s and are usually stabilized by cyclopentadienyl ligands. AEyl complexes can be accessed via the interaction of a thorium haUde and an aHyl grignard. This synthetic method was utilized to obtain a rare example of a naked aHyl complex, Th(Tj -C2H )4 [144564-74-9] which decomposes at 0°C. This complex, when supported on dehydroxylated y-alumina, is an outstanding heterogeneous catalyst for arene hydrogenation and rivals the most active platinum metal catalysts in activity (17,18). [Pg.43]

There appear to be few examples of the formation of azetidin-2-ones by closure of the C(2) —C(3) bond. One reaction which fits into this category involves reaction of the iron carbonyl lactone complexes (144) with an amine to give the allyl complexes (145) which on oxidation are converted in high yield to 3-vinyl-/3-lactams (146) (80CC297). [Pg.257]

Similarly many other ij -allyl carbonyl complexes convert to ij -allyl complexes with loss of I CO. [Pg.933]

Many -allyl complexes are fiux ional (p. 914) at room temperature or slightly above. [Pg.934]

The derivative 171 is of interest in this series of complexes since it undergoes isomerization of the alkyne substituent in position 1 to yield 172 and 173. The allyl complex 172 reacts with diphenylarsine to yield predominantly the chelate 174 (X = AsPh2) together with 175 and 176 (98IC1105). Complexes of the types 174 (X = PPh2) and 177 are known (93BSCF673 97BSCF471). [Pg.146]

The complex 8, formed by the addition of 2-propenylmagnesium chloride to 7, adds to aromatic aldehydes, 1-alkanals, a-branched and unbranched alkanals uniformly from the 7 c-face leading to hoinoallylic alcohols with 88-94% ee35 (Method A). After hydrolytic workup, both components can be recycled. Allyl complexes 10, generated from 9, prefer 67-attack and lead to the ent-homoallylic alcohols with excellent enantioselectivity36 (Method B) (Table 8). [Pg.427]

Finally, intermediate cationic allyl complexes of palladium15,16 and ruthenium17, produced from allylic esters by the action of substoichiometric amounts of the metal catalyst, have been electronically inverted by reduction to become nucleophilic anion equivalents, which are capable of carbonyl addition. [Pg.452]

The application of these catalysts in the initial state (without any special treatment of the surface organometallic complexes of such cata-lysts) for ethylene polymerization has been described above. The catalysts formed by the reaction of 7r-allyl compounds with Si02 and AUOj were found to be active in the polymerization of butadiene as well (8, 142). The stereospecificity of the supported catalyst differed from that of the initial ir-allyl compounds. n-Allyl complexes of Mo and W supported on silica were found to be active in olefin disproportionation (142a). [Pg.191]

Table IV presents the results of the determination of polyethylene radioactivity after the decomposition of the active bonds in one-component catalysts by methanol, labeled in different positions. In the case of TiCU (169) and the catalyst Cr -CjHsU/SiCU (8, 140) in the initial state the insertion of tritium of the alcohol hydroxyl group into the polymer corresponds to the expected polarization of the metal-carbon bond determined by the difference in electronegativity of these elements. The decomposition of active bonds in this case seems to follow the scheme (25) (see Section V). But in the case of the chromium oxide catalyst and the catalyst obtained by hydrogen reduction of the supported chromium ir-allyl complexes (ir-allyl ligands being removed from the active center) (140) C14 of the... Table IV presents the results of the determination of polyethylene radioactivity after the decomposition of the active bonds in one-component catalysts by methanol, labeled in different positions. In the case of TiCU (169) and the catalyst Cr -CjHsU/SiCU (8, 140) in the initial state the insertion of tritium of the alcohol hydroxyl group into the polymer corresponds to the expected polarization of the metal-carbon bond determined by the difference in electronegativity of these elements. The decomposition of active bonds in this case seems to follow the scheme (25) (see Section V). But in the case of the chromium oxide catalyst and the catalyst obtained by hydrogen reduction of the supported chromium ir-allyl complexes (ir-allyl ligands being removed from the active center) (140) C14 of the...
Recently, Co(III)-allyl complexes have been described to be sulfonylated regiospecifi-cally by sulfonyl halides under irradiation232 (equation 42). Similarly, allyl methyl sulfone has been obtained from allyltrimethylsilane under copper(I) catalysis213. [Pg.190]

Protonation of the TMM complexes with [PhNMe2H][B(C6Fs)4] in chlorobenzene at —10 °C provided cationic methallyl complexes which are thermally robust in solution at elevated temperatures as determined by NMR spectroscopy. In contrast, addition of BfCgFsls to the neutral TMM precursors provided zwitterionic allyl complexes (Scheme 98). Surprisingly, it was found that neither the cationic nor the zwitterionic complexes are active initiators for the Ziegler-Natta polymerization of ethylene and a-olefins. °°... [Pg.257]

The zirconium TMM complexes also react with organic electrophiles, including unactivated ones, according to Scheme 99 under formation of the corresponding substituted allyl complexes. ... [Pg.257]


See other pages where Allylation complexes is mentioned: [Pg.23]    [Pg.61]    [Pg.62]    [Pg.63]    [Pg.65]    [Pg.466]    [Pg.30]    [Pg.933]    [Pg.934]    [Pg.1167]    [Pg.1171]    [Pg.1171]    [Pg.194]    [Pg.209]    [Pg.120]    [Pg.262]    [Pg.42]    [Pg.167]    [Pg.262]   
See also in sourсe #XX -- [ Pg.20 ]




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2’- -complexes, allylic substitutions

7T-Allyl palladium complex

7T-allyl complexes

7i-Allyl complex

7r-Allyl complexes

7r-Allylic complexes

7r-allyl complexes of nickel

Actinide allyl complexes

Alkene Insertions with Nickel-Allyl Complexes

Alkyl transfer reactions 3-Allyl complexes

Alkyl-allyl complex

Alkylation of Allyl Fp Complexes and Formal Cycloadditions

Alkyne Insertions with Nickel-Allyl Complexes

Allyl (-enyl) complexes

Allyl Carbonyl Complexes

Allyl Complexes by Nucleophilic Attack

Allyl Complexes of Palladium and Platinum

Allyl alcohols palladium complexes

Allyl and Dienyl Complexes of Ruthenium

Allyl and buta-1,3-diene complexes

Allyl bridged transition metal complexes

Allyl carbonates palladium complexes

Allyl cations complexes

Allyl cations, iron carbonyl complexes

Allyl chloride 71-Ally 1 complexes

Allyl chloride metal complexes

Allyl complexes Grignard reagents

Allyl complexes amines

Allyl complexes bonding

Allyl complexes catalysis

Allyl complexes classification

Allyl complexes dynamic equilibria

Allyl complexes dynamic properties

Allyl complexes dynamics

Allyl complexes electronic spectra

Allyl complexes fluxionality

Allyl complexes from 1,3-dienes

Allyl complexes from allenes

Allyl complexes from olefins

Allyl complexes group 3 metals

Allyl complexes isocyanide insertion

Allyl complexes isomerization

Allyl complexes lithium allyls

Allyl complexes nucleophilic addition

Allyl complexes nucleophilic attacks

Allyl complexes of palladium

Allyl complexes overview

Allyl complexes oxidative addition

Allyl complexes preparation

Allyl complexes reaction with carbon dioxide

Allyl complexes reactions

Allyl complexes structures

Allyl complexes synthesis

Allyl complexes synthetic applications

Allyl complexes tungsten

Allyl complexes uranium

Allyl complexes with electrophiles

Allyl complexes, osmium

Allyl compounds metal complexes

Allyl cyanamide complex

Allyl metal complexes

Allyl reaction with anionic chromium complex

Allyl rhodium complexes, alkylation

Allyl rhodium complexes, alkylation intermediate

Allyl titanium complexes, reaction with

Allyl trifluorophosphine complexes

Allyl)palladium(II) Complexes

Allyl, fluxional complexes

Allyl-Fe-complex

Allyl-iron complex

Allylation palladium complexes

Allylic Substitution Reactions via n-Allyl Complexes

Allylic alkylations complexes

Allylic complexes, properties

Allylic derivatives complexes

Allylic hydride complex

Allylic substitutions iridium complexes

Bis 7r-allyl palladium complex

Bis-7r-allyl complexes

Bonding models for allyl complexes

Chiral metal complexes electrophilic allylation

Chiral metal complexes, allylic alcohol

Chromium complexes allyl

Cobalt allyl complexes

Cobalt complexes allylic oxidation

Complex allyl

Complex allyl

Complex allyl-type

Complexes Containing Allyls or Monoalkenes

Complexes allyl zinc

Complexes, allylic

Copper complexes allylic oxidation

Cyclopentadiene complexes allyl

Ethers, allyl propargyl use of cobalt complexes catalysts

Ethylene with zirconium allyl complexes

Formation of a- Allyl Complexes

Hafnium complexes allyl

Hydrido-allyl complexes

Ir-allyl complexes

Ir-allyl complexes of palladium

Iridium complexes allyl

Iron complexes allyl dimerization

Iron complexes allylic oxidation

Ji-allyl complex

Jr-Allylic palladium complex

Jr-allyl complex

Jr-allylic complexes

Jt-allyl complex

Jt-allyl nickel complexes

Jt-allyl palladium complexes

Lanthanide allyl complexes

Lanthanide complex with allyl

Lithium allyl complexes

Manganese allyl complexes

Manganese complexes allylic oxidation

Metal-allyl complexes Nucleophilic addition

Metal-allyl complexes Preparation

Metal-allyl complexes Synthetic applications

Molybdenum allyl complexes

Molybdenum allyl complexes chiral

N-allyl complex

Nickel complexes allyl

Nickel-complex-catalyzed reactions allyl intermediates

Niobium complexes allyl

Organo-palladium allyl complexes

Organometallic compounds allyl complexes

Palladium allyl complex

Palladium complexes allyl/enyl

Palladium complexes allyllic reactions

Palladium complexes diene conjugation, allylic intermediates

Palladium-allyl complexes nucleophilic attacks

Palladium-allyl complexes stoichiometric attack

Pd-allyl complex formation

Pi-allyl complexes

Platinum allyl complex

Protecting groups, allyl-based deprotections complexes

Pyrazole, 3,5-dimethylchromium trioxide complex allylic alcohol oxidation

Pyrazole, 3,5-dimethylchromium trioxide complex allylic oxidation

R 3-allyl complex

Reactions of Allyl Complexes

Reactions of Nucleophilic 7r-Allyl Complexes

Rhenium complexes allyl

Rhodium allyl complex

Ruthenium allyl carbene complexes

Ruthenium, allyl complexes

Sakurai allylation reaction Lewis acid-carbonyl complex

Scandium complexes allyl

Sodium azide reaction with ir-allyl complexes

Sulfonimidoyl-Substituted Bis (allyl) titanium Complexes

Sulfonimidoyl-Substituted Mono (allyl) titanium Complexes

Synthesis of Metal Complexes Containing Chelated Allyl Ligands

T)3-Allyl complexes

Tantalum complexes allyl

Thorium allyl complexes

Titanium complexes allyl

Titanium complexes allylic alcohols

Titanium complexes, reaction with carbon allyl

Titanocenes allyl complexes

Tr-Allyl palladium complex

Tr-allyl complexes

Transition metal allyl complexes

Transition metal allyl complexes with -

Transition metal allylic complexes

Tt-Allyl complexes

Tt-allyl-palladium complex

Tt-allylic complexes, with

Vanadium complexes allyl

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