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Enol ether, silyl

A neat mixture of the /J-unsaturated ketone (lOmmol), triethylsilane (11 mmol), and tris(triphenylphosphine)rhodium(i) chloride (0.01 mmol) was stirred at 50 °C for 2h, and the product silyl enol ether was distilled directly (yields 90-98%). [Pg.104]

Example of use with dimethylphenylsilane (11). A mixture of the a/3-unsaturated ketone (1.05 mmol), dimethylphenylsilane (1.1 mmol) and tris(triphenylphosphine)rhodium(i) chloride (0.002 mmol) was heated at 55 °C for 1 h. The silyl enol ether was distilled directly from the reaction. [Pg.104]


TMS silyl enol ethers are labile can also use EtsSi-, iPrsSi- etc. [Pg.74]

Silyl enol ether formation with RsSiCl-p EtsN gives thermodyanamic silyl enol ether... [Pg.74]

MuFaiyarfia-AJdoJ- Silyl Enol Ethers as an enolate precursors,... [Pg.86]

Mukaiyarna-Johnson AJdoJ- Lewis acid promoted condensation of silyl enol ethers with acetals ... [Pg.87]

Fluoride promoted alkylation of silyl enol ethers Acc. Cfiem. Res. 1985, 18, 181... [Pg.87]

The ketone is added to a large excess of a strong base at low temperature, usually LDA in THF at -78 °C. The more acidic and less sterically hindered proton is removed in a kineti-cally controlled reaction. The equilibrium with a thermodynamically more stable enolate (generally the one which is more stabilized by substituents) is only reached very slowly (H.O. House, 1977), and the kinetic enolates may be trapped and isolated as silyl enol ethers (J.K. Rasmussen, 1977 H.O. House, 1969). If, on the other hand, a weak acid is added to the solution, e.g. an excess of the non-ionized ketone or a non-nucleophilic alcohol such as cert-butanol, then the tautomeric enolate is preferentially formed (stabilized mostly by hyperconjugation effects). The rate of approach to equilibrium is particularly slow with lithium as the counterion and much faster with potassium or sodium. [Pg.11]

The silyl enol ethers 209 and 212 are considered to be sources of carbanions. and their transmetallation with Pd(OAc)2 forms the Pd enolate 210. or o.w-tt-allylpalladium, which undergoes the intramolecular alkene insertion and. 1-elimination to give 3-methylcyclopentenone (211) and a bicyclic system 213[199], Five- and six-membered rings can be prepared by this reaction[200]. Use of benzoquinone makes the reaction catalytic. The reaction has been used for syntheses of skeletons of natural products, such as the phyllocladine intermediate 214[201], capnellene[202], the stemodin intermediate 215[203] and hir-sutene [204]. [Pg.49]

In the prostaglandin synthesis shown, silyl enol ether 216, after transmetaJ-lation with Pd(II), undergoes tandem intramolecular and intermolecular alkene insertions to yield 217[205], It should be noted that a different mechanism (palladation of the alkene, rather than palladium enolate formation) has been proposed for this reaction, because the corresponding alkyl enol ethers, instead of the silyl ethers, undergo a similar cyclization[20I],... [Pg.50]

The silyl enol ether 940 is prepared from the Q-bromo ketone 939 by the transmetahation with trimethylsilyltributyjtin[784J. [Pg.265]

Silyl enol ethers are other ketone or aldehyde enolate equivalents and react with allyl carbonate to give allyl ketones or aldehydes 13,300. The transme-tallation of the 7r-allylpalladium methoxide, formed from allyl alkyl carbonate, with the silyl enol ether 464 forms the palladium enolate 465, which undergoes reductive elimination to afford the allyl ketone or aldehyde 466. For this reaction, neither fluoride anion nor a Lewis acid is necessary for the activation of silyl enol ethers. The reaction also proceed.s with metallic Pd supported on silica by a special method[301j. The ketene silyl acetal 467 derived from esters or lactones also reacts with allyl carbonates, affording allylated esters or lactones by using dppe as a ligand[302]... [Pg.352]

Preparation of o,/3-Unsaturated Carbonyl Compounds by the Reactions of Silyl Enol Ethers and Enol Acetates with Ally Carbonates... [Pg.363]

Another preparative method for the enone 554 is the reaction of the enol acetate 553 with allyl methyl carbonate using a bimetallic catalyst of Pd and Tin methoxide[354,358]. The enone formation is competitive with the allylation reaction (see Section 2.4.1). MeCN as a solvent and a low Pd to ligand ratio favor enone formation. Two regioisomeric steroidal dienones, 558 and 559, are prepared regioselectively from the respective dienol acetates 556 and 557 formed from the steroidal a, /3-unsaturated ketone 555. Enone formation from both silyl enol ethers and enol acetates proceeds via 7r-allylpalladium enolates as common intermediates. [Pg.364]

Pd(II)-catalyzed cyclization of the siloxyhexatriene 34 offers a cyclohexe-none annulation method. The Pd enolate 35, formed by transraetallation of the silyl enol ether with Pd(II), is an intermediate which undergoes intramolecular eWo-alkene insertion. Then Pd(II) is regenerated to give 36, and finally cyclohexenone is formed[38]. [Pg.517]

Trimethylsilyl enol ethers can be used to protect ketones, but in general are not used for this purpose because they are reactive under both acidic and basic conditions. More highly hindered silyl enol ethers are much less susceptible to acid and base. A less hindered silyl enol can be hydrolyzed in the presence of a more hindered one. ... [Pg.222]

The preparation of silyl enol ethers has been reviewed. [Pg.222]

A related tert-butylation procedure in which the silyl enol ether is added to a mixture of titanium tetrachloride and tert-butyl chloride gives rise to distinctly lower yields. This is also the case if the tertiary halide is added to a mixture of silyl enol ether and titanium tetrachloride. ... [Pg.99]

Although ethereal solutions of methyl lithium may be prepared by the reaction of lithium wire with either methyl iodide or methyl bromide in ether solution, the molar equivalent of lithium iodide or lithium bromide formed in these reactions remains in solution and forms, in part, a complex with the methyllithium. Certain of the ethereal solutions of methyl 1ithium currently marketed by several suppliers including Alfa Products, Morton/Thiokol, Inc., Aldrich Chemical Company, and Lithium Corporation of America, Inc., have been prepared from methyl bromide and contain a full molar equivalent of lithium bromide. In several applications such as the use of methyllithium to prepare lithium dimethyl cuprate or the use of methyllithium in 1,2-dimethyoxyethane to prepare lithium enolates from enol acetates or triraethyl silyl enol ethers, the presence of this lithium salt interferes with the titration and use of methyllithium. There is also evidence which indicates that the stereochemistry observed during addition of methyllithium to carbonyl compounds may be influenced significantly by the presence of a lithium salt in the reaction solution. For these reasons it is often desirable to have ethereal solutions... [Pg.106]

Silylated cyanohydrins have also been prepared via silylation of cyanohydrins themselves and by the addition of hydrogen cyanide to silyl enol ethers. Silylated cyanohydrins have proved to be quite useful in a variety of synthetic transformations, including the regiospecific protection of p-quinones, as intermediates in an efficient synthesis of a-aminomethyl alcohols, and for the preparation of ketone cyanohydrins themselves.The silylated cyanohydrins of heteroaromatic aldehydes have found extensive use as... [Pg.199]

The in situ cyanosilylation of p-an1saldehyde is only one example of the reaction which can be applied to aldehydes and ketones in general. - The simplicity of this one-pot procedure coupled with the use of inexpensive reagents are important advantages over previous methods. The silylated cyanohydrins shown in the Table were prepared under conditions similar to those described here. Enolizable ketones and aldehydes have a tendency to produce silyl enol ethers as by-products in addition to the desired cyanohydrins. The... [Pg.199]

This effect is the basis of the synthetic importance of ester enolate Claisen rearrangements in which enolates or silyl enol ethers of allylic esters are rearranged into 4-pentenoate esters. [Pg.634]

Selective fluonnation in polar solvents has proved commercially successful in the synthesis of 5 fluorouracil and its pyrimidine relatives, an extensive subject that will be discussed in another section Selective fluonnation of enolates [47], enols [48], and silyl enol ethers [49] resulted in preparation of a/phn-fluoro ketones, fieto-diketones, heta-ketoesters, and aldehydes The reactions of fluorine with these functionalities is most probably an addition to the ene followed by elimination of fluonde ion or hydrogen fluoride rather than a simple substitution In a similar vein, selective fluonnation of pyridmes to give 2-fluoropyridines was shown to proceed through pyridine difluondes [50]... [Pg.109]

Systems usually fluonnated by electropositive fluorine reagents include acti-vated alkenes (enol ethers, enol acetates, silyl enol ethers, and enamines), activated aromatic systems, certain slightly activated carbon-hydrogen bonds, and selected organometallics. [Pg.133]

Both the Af-fluorosulfonamides and the A -fluoroammonium salts are very effective in the fluormation of enol acetates, enamines, silyl enol ethers, and enolates (Table 2) The reactions are thought to proceed through a mechanism which involves Sf 2 attack on the fluorine atom, but contributions from electron-transfer pathways also exist [65, 68, 73, 75, 76, 79, 80, 81, 82]... [Pg.155]

Silyl enol ethers are fluonnated in high yields with xenon difluoride [62 93, 94 95] Applications of this reaction to the preparation of fluonnated... [Pg.161]

Table 3. Reaction of (5)-3-Ben2yloxy-2-fIuoro-2-methylpropionaldehyde with Silyl Enol Ethers and Silyl Ketene Acetals [6]... Table 3. Reaction of (5)-3-Ben2yloxy-2-fIuoro-2-methylpropionaldehyde with Silyl Enol Ethers and Silyl Ketene Acetals [6]...
For some condensations with silylated substrates as starting compounds, trimethylsilyl inflate can be used as a catalyst [103, 104, 105] Atypical example of such a reaction is the aldol type condensation of silyl enol ethers and acetals catalyzed by 1-5 mol% of trimethylsilyl inflate [103] (equation 53)... [Pg.961]

FITS reagents), has undergone considerable development recently [141,142,143, 144, 14S. These compounds, available fromperfluoroalkyhodides (equation 76), are very effective electrophilicperfluoroalkylating agents They react with carban-lons, aromatic compounds, alkenes, alkynes, silyl enol ethers, and other nucleophiles under mild conditions to introduce the perfluoroalkyl moiety mto organic substrates (equation 77) (see the section on alkylation, page 446). [Pg.969]


See other pages where Enol ether, silyl is mentioned: [Pg.44]    [Pg.45]    [Pg.83]    [Pg.209]    [Pg.104]    [Pg.363]    [Pg.385]    [Pg.388]    [Pg.113]    [Pg.78]    [Pg.98]    [Pg.42]    [Pg.42]    [Pg.620]    [Pg.945]    [Pg.129]   
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1.4- Dicarbonyl compounds from silyl enol ethers

Acetals reaction with silyl enol ethers

Acetals silyl enol ethers

Acetals, acid catalyzed with silyl enol ethers

Acetoacetates enol silyl ethers

Acetoacetic acid enol silyl ethers

Acetophenone silyl enol ether

Acetophenone silyl enol ether: Silane, trimethyl[ oxy

Acetophenone silyl enol ether: Silane, trimethyl[(1-phenylvinyl,oxy

Aldehydes aldol reactions with silyl enol ethers

Aldehydes aldol reactions, silyl enol ethers, scandium

Aldehydes oxidation reactions, silyl enol ether derivatives

Aldehydes reaction with silyl enol ethers

Aldol Reaction Using Silyl Enol Ethers

Aldol Reactions Using Polymer-Supported Silyl Enol Ethers

Aldol additions of silyl enol ethers

Aldol condensation of silyl enol ethers

Aldol reaction silyl enol ether

Aldol reactions With silyl enol ethers

Aldol reactions aldehydes/silyl enol ethers

Aldol reactions of silyl enol ethers

Aldol reactions silyl enol ethers/acetals

Aldol-type reactions silyl enol ether

Alkali metal enolates silyl enol ethers

Alkoxy enol silyl ether

Alkyl halides silyl enol ethers

Alkylation of enol silyl ethers

Alkynones silyl enol ethers

Alkynyl silyl enol ethers

Allenic silyl enol ethers

Allenyl Silyl enol ethers

Anions enol silyl ethers

Aryl silyl enol ethers

Asymmetric enol silyl ethers

Benzene, iodosylalkane oxidation reaction with silyl enol ethers

Bicyclic silyl enol ethers

Boron enolates from silyl enol ethers

Brook rearrangement silyl enol ether formation

Carbanions silyl enol ether formation

Carbocations silyl enol ethers

Carboxylic acids silyl enol ether

Chlorotrimethylsilane silyl enol ethers from

Chromyl chloride reaction with silyl enol ethers

Claisen rearrangement of ester silyl enol ethers

Conjugate addition of silyl enol ethers

Conjugate addition silyl enol ethers from

Coupling of silyl enol ethers

Coupling reactions, silyl enol ether radical cations

Cyanides, a-alkoxyacyl reaction with silyl enol ethers

Cyanides, p-alkoxyacyl reaction with silyl enol ethers

Cyclohexane silyl enol ether

Cyclopropanation silyl enol ethers

Deprotonation silyl enol ethers

Electron deficient enol silyl ethers

Electron transfer silyl enol ethers

Enantioselective silyl enol ether

Enantioselective, enol silyl ethers with

Enantioselective, enol silyl ethers with aldehydes

Enol ethers, silyl addition

Enol ethers, silyl boranes

Enol ethers, silyl diketones

Enol ethers, silyl from aldehydes

Enol ethers, silyl from enolate anions

Enol ethers, silyl oxidative coupling

Enol ethers, silyl with methyllithium

Enol silyl ether substrates

Enol silyl ethers alkenes

Enol silyl ethers chemoselectivity

Enol silyl ethers electrophilic intermediates

Enol silyl ethers of acylsilanes

Enol silyl ethers, reaction with acetals/ketals

Enolate ions silyl enol ethers

Enolates from silyl enol ethers

Enolates silylation

Equatorial silyl enol ethers

Ethers, enol silyl, reaction with iminium salts

Ethers, silyl enol from esters

Ethers, silyl enol reaction with organolithium

Ethers, silyl enol reagents

Fluonnation silyl enol ethers

Fluorinations silyl enol ethers

Friedel-Crafts reactions silyl enol ethers

From silyl enol ethers

General procedure for silyl enol ethers

Glycine-derived enol silyl ethers

Glyoxal, phenylreaction with enol silyl ether

Imines, reactions with silyl enol ethers

Iminium ions silyl enol ethers

Ketene silyl enol ether

Ketone Silyl enol ether coupling

Ketones from silyl enol ethers

Ketones oxidation reactions, silyl enol ether derivatives

Ketones silyl enol ether formation

Ketones silyl enol ether synthesis

Ketones, a-silyl enol ether preparation

Ketones, reaction with silyl enol ethers

Ketones, reductive cleavage silyl enol ethers

Lead tetraacetate with silyl enol ethers

Leucarins reaction with enol silyl ether

Lewis acid catalysis in reactions of silyl enol ethers

Methyllithium reaction with silyl enol ethers

Michael addition Of silyl enol ethers

Michael silyl enol ethers

Mukaiyama reaction use of silyl enol ethers

Of silyl enol ethers

Oxidation of silyl enol ethers

Oxidative Functionalization of Silyl Enol Ethers

Ozonolysis silyl enol ethers

P-Lactams use of silyl enol ethers

Palladium enolates from silyl enol ethers

Phenylthiomethylstannylations silyl enol ethers

Photoinduced electron transfer silyl enol ethers

Polymer silyl enol ethers

Polymer-supported silyl enol ethers

Propiophenone, enol silyl ether

Radical cations from silyl enol ethers

Radical silyl enol ethers

Reaction with enol silyl ethers

Rearrangement to Silyl Enol Ethers

SILANE, TRIMETHYL Silyl enol ethers

Sharpless asymmetric epoxidation of ester silyl enol ethers

Silver compounds Silyl enol ethers

Silver oxide with silyl enol ethers

Silyl Enol Ethers and Ketene Acetals Preparation

Silyl enol ether formation Mannich reaction

Silyl enol ether palladium acetate oxidation

Silyl enol ether radical cation

Silyl enol ether reaction with unsaturated ketone

Silyl enol ether, Michael addition

Silyl enol ether, radical attack

Silyl enol ether, selective enolate formation

Silyl enol ethers 2+2]-cycloaddition reactions

Silyl enol ethers Alkynyl complexes

Silyl enol ethers Alkynyl groups

Silyl enol ethers Alkynyl halides

Silyl enol ethers Alkynylation

Silyl enol ethers Beckmann reaction

Silyl enol ethers Beckmann rearrangement

Silyl enol ethers Chlorotrimethylsilane-Zinc

Silyl enol ethers Claisen rearrangement

Silyl enol ethers Diels-Alder reaction

Silyl enol ethers Lewis acid catalysed aldol reaction

Silyl enol ethers Lewis acid mediated

Silyl enol ethers Lewis acid promoted

Silyl enol ethers Lithium amides, chiral

Silyl enol ethers Mannich reactions

Silyl enol ethers Mukaiyama aldol reactions

Silyl enol ethers Palladium oxidation

Silyl enol ethers Rubottom oxidation

Silyl enol ethers Thermodynamic formation

Silyl enol ethers Tsuji allylation

Silyl enol ethers a-sulfonyloxygenation

Silyl enol ethers acylation

Silyl enol ethers addition reactions

Silyl enol ethers alcohol synthesis

Silyl enol ethers aldehyde

Silyl enol ethers aldol addition reactions

Silyl enol ethers aldol condensation

Silyl enol ethers aldol condensation reactions

Silyl enol ethers alkylation

Silyl enol ethers amination

Silyl enol ethers and acetals

Silyl enol ethers as nucleophiles

Silyl enol ethers asymmetric synthesis

Silyl enol ethers aziridination

Silyl enol ethers carbocation

Silyl enol ethers catalysts

Silyl enol ethers chiral

Silyl enol ethers chlorination

Silyl enol ethers chlorotrimethylsilane

Silyl enol ethers cleavage

Silyl enol ethers compounds

Silyl enol ethers conjugate addition

Silyl enol ethers conjugate addition reactions

Silyl enol ethers conversion into enolates

Silyl enol ethers conversion to a-hydroxyketones by oxidation

Silyl enol ethers conversion to enolates

Silyl enol ethers coupling reactions

Silyl enol ethers cross-coupling reactions

Silyl enol ethers cyclic

Silyl enol ethers cyclization

Silyl enol ethers cycloisomerization

Silyl enol ethers dehydrogenation

Silyl enol ethers diastereoselective aldol additions

Silyl enol ethers diastereoselective benzylation

Silyl enol ethers dimerization

Silyl enol ethers electrochemical

Silyl enol ethers electron-donor properties

Silyl enol ethers enantioselective fluorination

Silyl enol ethers epoxidation

Silyl enol ethers epoxides

Silyl enol ethers fluorination

Silyl enol ethers from carbonyl compounds

Silyl enol ethers geometry

Silyl enol ethers halogenation

Silyl enol ethers hexamethyldisilazane

Silyl enol ethers hydrolysis

Silyl enol ethers imines

Silyl enol ethers in aldol reactions

Silyl enol ethers in conjugate additions

Silyl enol ethers intramolecular alkylation

Silyl enol ethers iodides from

Silyl enol ethers iodotrimethylsilane

Silyl enol ethers ketones

Silyl enol ethers methyl ketone-derived

Silyl enol ethers methylmagnesium bromide

Silyl enol ethers of ester enolates

Silyl enol ethers organometallic reagents

Silyl enol ethers oxidation

Silyl enol ethers palladium catalysts

Silyl enol ethers palladium complexes

Silyl enol ethers photochemical cycloaddition

Silyl enol ethers photocyclization

Silyl enol ethers photocycloadditions

Silyl enol ethers preparation

Silyl enol ethers preparation from trimethylsilyl esters and

Silyl enol ethers quinones

Silyl enol ethers reaction

Silyl enol ethers reaction with nitro olefins

Silyl enol ethers reactions with carbocations

Silyl enol ethers reactions with carbonyl compounds

Silyl enol ethers rearrangement

Silyl enol ethers reduction

Silyl enol ethers regioselectivity

Silyl enol ethers regiospecific synthesis

Silyl enol ethers stereochemistry

Silyl enol ethers stereoselective formation

Silyl enol ethers sulfenylation

Silyl enol ethers synthesis

Silyl enol ethers tertiary halides

Silyl enol ethers transmetalation

Silyl enol ethers trifluoromethanesulfonate

Silyl enol ethers trimethylsilyldiethylamine

Silyl enol ethers via oxidative cleavage

Silyl enol ethers vinyl substitution

Silyl enol ethers with acetals

Silyl enol ethers with aryl Grignard reagents

Silyl enol ethers with carbonyl compounds

Silyl enol ethers with primary bromides

Silyl enol ethers with xenon

Silyl enol ethers with xenon difluonde

Silyl enol ethers, -sigmatropic

Silyl enol ethers, -sigmatropic rearrangement

Silyl enol ethers, allylation

Silyl enol ethers, dehydrosilylation

Silyl enol ethers, formation

Silyl enol ethers, oxidative functionalization

Silyl enol ethers, protonation

Silyl enol ethers, protonation enantioselective

Silyl enol ethers, reactions with dienes

Silyl enol ethers, steroidal

Silyl enolate

Silyl enolates

Silyl ethers from enolates

Silyl-hydroformylation enol ether preparation

Silylacetylene, silyl enol ether

Silylations silyl enol ethers, iodotrimethylsilane

Singlet oxygen silyl enol ether reaction

Stannylated silyl enol ethers, alkylation

Steroidal, from silyl enol ethers

Subject from enol silyl ethers

Sulfides, p-keto via silyl enol ethers

Synthetic equivalents silyl enol ethers

Transmetalation silyl enol ether formation

Tris silyl enol ethers

Unsaturated carbonyl compounds silyl enol ethers

Vinyl silyl enol ethers

Xenon difluoride silyl enol ethers

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