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Elimination substitution

The reactions of copper salts with diacyl peroxides have been investigated quite thoroughly, and the mechanistic studies indicate that both radicals and carbocations are involved as intermediates. The radicals are oxidized to carbocations by Cu(II), and the final products can be recognized as having arisen from carbocations because characteristic patterns of substitution, elimination, and rearrangement can be discerned " ... [Pg.725]

It s reasonable to ask why one would prepare a ketone by way of a keto ester (ethyl acetoacetate, for example) rather than by direct alkylation of the enolate of a ketone. One reason is that the monoalkylation of ketones via their enolates is a difficult reaction to cany out in good yield. (Remember, however, that acylation of ketone enolates as described in Section 21.4 is achieved readily.) A second reason is that the delocalized enolates of (3-keto esters, being far- less basic than ketone enolates, give a higher substitution-elimination ratio when they react with alkyl halides. This can be quite important in those syntheses in which the alkyl halide is expensive or difficult to obtain. [Pg.896]

Desulfonation reaction (reductive and oxidative desulfonation, nucleophilic substitution, elimination, and SO2 extrusion) in synthesis and transformations of heterocycles 99T10547. [Pg.208]

Classify the following reactions as addition, substitution, elimination, or condensation. [Pg.608]

Identify the type of reaction (substitution, elimination, addition), (b) Name each organic reactant and product. [Pg.902]

These reactions comprise nucleophilic SN2 substitutions, -eliminations, and nucleophilic additions to carbonyl compounds or activated double bonds, etc. They involve the reactivity of anionic species Nu associated with counterions M+ to form ion-pairs with several possible structures [52] (Scheme 3.4). [Pg.73]

Alkyl p-trimethylammonium- Substitution/elimination rate sensitive to Sukenik and Bergman, 1976... [Pg.292]

An alternative procedure to effect elimination resolves this problem. Opening the oxaspiropentane 26 with selenide anion in a non-protic solvent effects a direct elimination via a merged substitution — elimination mechanism to give the vinyl-... [Pg.32]

Additional Transformation Reactions. Other reactions that can be catalyzed by mineral surfaces are substitution, elimination, and addition reactions of organic molecules. Substitution and elimination are two general types of reactions that occur at saturated carbon atoms of organic molecules. Both types are initiated by nucleophilic attack however, in elimination reactions it is the basicity of the nucleophile that determine its reactivity rather than its nucleophilicity. Since mineral surfaces are expected to have both nucleophilic and basic properties, these types of reactions should also occur at mineral-water interfaces (see Chapter 22). It remains to be shown whether or not these reactions are catalyzed under environmental conditions. [Pg.15]

O Identify each reaction as one of the following types of reactions addition, substitution, elimination, oxidation, reduction, condensation, or hydrolysis. [Pg.79]

In many cases, hazard based substitution eliminates the need for notoriously difficult exposure assessment. Persistence and bioaccumulation potential are surrogate measures of both hazard and exposure that can be applied quickly to all chemicals In order to identify those of greatest concern. [Pg.6]

The polarity of carbon-halogen bond of alkyl halides is responsible for their nucleophilic substitution, elimination and their reaction with metal atoms to form organometallic compounds. Nucleophilic substitution reactions are categorised into and on the basis of their kinetic properties. Chirality has a profound role in understanding the reaction mechanisms of Sj l and Sj 2 reactions. Sj 2 reactions of chiral all l halides are characterised by the inversion of configuration while Sj l reactions are characterised by racemisation. [Pg.41]

Figure 4. Relative oxidation rates of various aromatic alcohols. Para-hydroxyl substitution eliminates substrate oxidation. Figure 4. Relative oxidation rates of various aromatic alcohols. Para-hydroxyl substitution eliminates substrate oxidation.
Halogen displacement from 2-halo-tetrahydropyrans and -hexahydropyrimidines is extremely easy, being assisted, in the SnI process, by the electron pairs on the heteroatom (equation 124). 3-Halohexahydropyridines can also show accelerated halogen displacement (anchimeric assistance from nitrogen equation 125). Apart from these and other (normal) substitutions, eliminations of H—Hal are also commonly found. [Pg.64]

Most pyrogallol derivatives did not precipitate either (Table III). A small precipitation occurred with pyrogallol (which may be considered as a hydroxyresorcinol) and it reacts with vanillin/HCl also (7). However, any additional substitution eliminates this reactivity, e.g., gallic acid (Table IV). Purpurogallin did precipitate with formaldehyde. It is not very soluble in the reaction mixture, and it is a tropolone. Structures of this type might interfere, but in tea and probably in wine the known tropolone derivatives are flavonoids (I, 25). [Pg.210]

Another innovation in this text is the use of three-dimensional reaction coordinate diagrams, pioneered by Thornton, More O Ferrall, and Jencks, in the discussions of nucleophilic substitutions, eliminations, and acid catalysis of carbonyl additions. We hope that the examples may lead to more widespread use of these highly informative diagrams. [Pg.759]

Fig. 4. Isosteric alkene substitution eliminates catalyst selectivity... Fig. 4. Isosteric alkene substitution eliminates catalyst selectivity...

See other pages where Elimination substitution is mentioned: [Pg.141]    [Pg.896]    [Pg.134]    [Pg.290]    [Pg.153]    [Pg.341]    [Pg.713]    [Pg.107]    [Pg.213]    [Pg.176]    [Pg.43]    [Pg.57]    [Pg.57]    [Pg.65]    [Pg.292]    [Pg.175]    [Pg.174]    [Pg.324]    [Pg.720]    [Pg.1566]    [Pg.167]    [Pg.172]    [Pg.220]    [Pg.99]    [Pg.311]    [Pg.230]    [Pg.105]   
See also in sourсe #XX -- [ Pg.1543 ]




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Acyl substitution by nucleophilic addition-elimination

Addition elimination mechanism of nucleophilic aromatic substitution

Addition-Elimination Mechanism of Nucleophilic Acyl Substitution

Addition-Elimination electrophilic substitution

Addition-Elimination nucleophilic substitution

Addition-Substitution-Elimination:,

Addition-elimination mechanism for nucleophilic aromatic substitution

Alcohols substitution and elimination

Alkoxide ions substitution versus elimination in reactions with

Alkyl Halides Nucleophilic Substitution and Elimination

Alkyl halides elimination from substituted

Alkyl halides substitution versus elimination

Amines Do Not Undergo Substitution or Elimination Reactions

Analysis of Several Competitions Between Substitutions and Eliminations

Anti elimination reactions, nucleophilic substitution

Aromatic substitution addition-elimination mechanism

Aromatic substitution by addition-elimination

Aromatics, substitution addition-elimination

Between Substitution and Elimination

By Elimination of Functionality from Substituted-Alkyl Substituents

Competing substitution and elimination reactions

Competition Between Substitution and Elimination

Contrasting Elimination and Substitution

EFFECTS OF STRUCTURE ON COMPETING SUBSTITUTION AND ELIMINATION

Electrophilic substitution 1,4-Elimination

Electrophilic substitution elimination reactions

Electrophilic substitution on aromatics addition-elimination

Elimination addition reactions nucleophilic aromatic substitution with

Elimination comparison with substitution

Elimination competition with substitution

Elimination from Substituted Cyclohexanes

Elimination leading to substitution

Elimination reactions competition between substitution

Elimination reactions competition with substitution

Elimination reactions nucleophilic substitution

Elimination reactions substitution

Elimination reactions versus substitution

Elimination substitution competition

Elimination v. substitution

Elimination v. substitution alkene stability and

Elimination v. substitution base size and

Elimination v. substitution basicity/nucleophilicity

Elimination v. substitution change of pathway

Elimination v. substitution entropy and

Elimination v. substitution leaving group and

Elimination v. substitution solvent and

Elimination v. substitution steric effects

Elimination v. substitution structure and

Elimination v. substitution temperature and

Elimination-addition reactions substitution

Elimination-substitution reactions, stereochemistry

Gevorgyan 6 Arene Substitution via Addition-Elimination

How the nucleophile affects elimination versus substitution

I Reactions of Alkyl Halides Nucleophilic Substitutions and Eliminations

Inherent safety elimination/substitution

Keys to Success Substitution Versus Elimination— Structure Determines Function

Kinetic data for substitution and elimination reactions

Microwave-Assisted Substitution Reactions via Addition Elimination

NUCLEOPHILIC SUBSTITUTION AND ELIMINATION REACTIONS

Nucleophilic Aromatic Substitution An Addition-Elimination Reaction

Nucleophilic Aromatic Substitution by the Addition-Elimination Mechanism

Nucleophilic Substitution and Elimination

Nucleophilic Substitution and Elimination at Saturated Carbon Atoms

Nucleophilic aromatic substitution addition-elimination mechanism

Nucleophilic aromatic substitution by addition-elimination

Nucleophilic aromatic substitution elimination process

Nucleophilic aromatic substitution elimination-addition

Nucleophilic substitution addition-elimination mechanism

Nucleophilic substitution allylic elimination

Nucleophilic substitution by addition-elimination

Nucleophilic substitution enantioselective elimination

Nucleophilic substitution palladium-catalyzed elimination

Nucleophilic substitution process elimination/addition reactions

Nucleophilic substitution reactions competition with elimination

Nucleophilic substitution versus elimination

Organic Halogen Compounds Substitution and Elimination Reactions

Organic Halogen Substitution and Elimination Reactions

Organic reaction mechanisms substitution/elimination

Predicting Substitution vs. Elimination

Reactions of Alcohols Substitution and Elimination

Reactions of Alkyl Halides Nucleophilic Substitutions and Eliminations

Reactions of Alkyl Halides Substitution and Elimination

Reactions of Nucleophilic Substitutions and Eliminations

Solvolysis, Substitution, Elimination, and Reduction

Substitution 4- elimination, sequential reactions

Substitution Addition and Elimination

Substitution and 3-Elimination Reactions at C(sp

Substitution and Elimination Reactions in Synthesis

Substitution and Elimination Reactions of Primary Haloalkanes

Substitution and Elimination Reactions of Secondary Haloalkanes

Substitution and Elimination as Competing Reactions

Substitution and Elimination at C(sp3)-X a Bonds, Part II

Substitution and Elimination at C(sp3)—X cr Bonds, Part

Substitution and elimination

Substitution and elimination reactions

Substitution by the Addition-Elimination Mechanism

Substitution compared with elimination

Substitution mechanisms elimination-addition

Substitution nucleophilic elimination

Substitution reactions addition-elimination mechanism

Substitution reactions aromatic nucleophilic (addition-elimination

Substitution versus elimination

Substitution vs. Elimination Identifying the Mechanism(s)

Substitution vs. Elimination Identifying the Reagent

Substitution vs. Elimination Predicting the Products

Substitution with Elimination of Substituents

Substitution, vinyl elimination-addition

Takashi Takahashi and Takayuki Doi 5 Alkynyl Substitution via Alkynylpalladation-Reductive Elimination

The Addition-Elimination Mechanism of Nucleophilic Aromatic Substitution

The Competition between Elimination and Substitution

The Elimination-Addition Mechanism of Nucleophilic Aromatic Substitution Benzyne

The Interplay Between Substitution and Elimination

The Preparation and Elimination of -Substituted Ketones

The Reactions of Hydrocarbons Oxidation, Reduction, Substitution, Addition, Elimination, and Rearrangement

Vinyl carbon substitution, addition-elimination mechanisms

When Do Nucleophilic Substitution and 3-Elimination Compete

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