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Radicals alkenes

In the dehydration pathway, water is eliminated, yielding an alkene radical cation with a mass 18 units less than M+. [Pg.415]

Crich D, Brebion F, Suk D-H (2006) Generation of Alkene Radical Cations by Heterolysis of -Substituted Radicals Mechanism, Stereochemistry, and Applications in Synthesis. 263-. 1-38... [Pg.258]

Phosphorylated derivatives of /3-nitroalcohols, upon exposure to Bu3SnH and AIBN, afford /3-(phosphatoxy)alkyl radicals. These radicals undergo heterolytic cleavage of the phosphate group to afford an alkene radical cation which is trapped intramolecularly in a tandem polar/radical crossover sequence. Derivative 37 (Scheme 13), through a 6-exol 5-exo overall cyclization, afforded the indolizidine derivative 38 as an equimolecular mixture of two diastereoisomers <2003JA7942, 2002OL2573>. [Pg.374]

Keywords Alkene radical cations Ion pairs Kinetics Stereochemical memory effects Tandem reactions... [Pg.14]

Scheme 2 Generation of alkene radical cations by the expulsion of a leaving group... Scheme 2 Generation of alkene radical cations by the expulsion of a leaving group...
At one time considered as two distinct reactions occurring by different mechanisms [51], the fragmentations of Scheme 2 and the rearrangments of Scheme 5 are now seen as different facets of the same fundamental heterolysis of -substituted alkyl radicals into alkene radical cations, with the eventual outcome determined by the reaction conditions [52],... [Pg.16]

Nelsen and coworkers determined a barrier to inversion through the planar form in 2 and 3 to be approximately 2 kcalmol-1 by variable temperature ESR spectroscopy [59]. Gerson and coworkers found, also by ESR spectroscopy, that the frequency of electron exchange between the two sites in 4, which is equivalent to rotation about the central bond, can vary between < 106 and > 109 s-1 depending the degree of steric hindrance to planarity [60]. Recent calculations also provide very small barriers to inversion through the planar form [56,57]. It is apparent, therefore, that for most synthetic purposes most alkene radical cations can be considered as essentially planar with effective delocalization over the two sp2-hybridized C atoms, and they will be considered as such in this chapter. [Pg.17]

Further evidence for the formation of alkene radical cations derives from the work of Giese, Rist, and coworkers who observed a chemically induced dynamic nuclear polarization (CIDNP) effect on the dihydrofuran 6 arising from fragmentation of radical 5 and electron transfer from the benzoyl radical within the solvent cage (Scheme 6) [67]. [Pg.19]

Relatively few kinetic data are available for the carbon-carbon bond forming reactions of alkene radical cations. Nevertheless, rate constants for the cyclization illustrated in Scheme 9, with generation of the alkene radical cation by the fragmentation method, have been measured. These cyclization rate constants are significantly faster than those of the corresponding neutral radicals [89]. [Pg.23]

It is important to note in planning synthetic schemes that alkene radical cations are extremely acidic substances. In the context of their generation... [Pg.23]

Scheme 9 Cyclization and deprotonation of an alkene radical cation... Scheme 9 Cyclization and deprotonation of an alkene radical cation...
Although cycloaddition reactions have yet to be observed for alkene radical cations generated by the fragmentation method, there is a very substantial literature covering this aspect of alkene radical cation chemistry when obtained by one-electron oxidation of alkenes [2-16,18-26,28-31]. Rate constants have been measured for cycloadditions of alkene and diene radical cations, generated oxidatively, in both the intra- and intermolecular modes and some examples are given in Table 4 [91,92]. [Pg.24]

The regiochemistry of nucleophilic addition to alkene radical cations is a function of the nucleophile and of the reaction conditions. Thus, water adds to the methoxyethene radical cation predominantly at the unsubstituted carbon (Scheme 3) to give the ff-hydroxy-a-methoxyethyl radical. This kinetic adduct is rearranged to the thermodynamic regioisomer under conditions of reversible addition [33]. The addition of alcohols, like that of water, is complicated by the reversible nature of the addition, unless the product dis-tonic radical cation is rapidly deprotonated. This feature of the addition of protic nucleophiles has been studied and discussed by Arnold [5] and Newcomb [84,86] and their coworkers. [Pg.24]

Using alkene radical cations generated under photostimulated electron-transfer conditions, Arnold and coworkers showed that the addition of an-... [Pg.24]

Table 4 Rate constants for cycloadditions with alkene radical cations a ... Table 4 Rate constants for cycloadditions with alkene radical cations a ...
Table 5 Rate constants for nucleophilic addition to alkene radical cations ... Table 5 Rate constants for nucleophilic addition to alkene radical cations ...
In designing preparative radical ionic chain reactions, including the fragmentation approach to alkene radical cations, careful choice of the radical... [Pg.27]

The suprafacial shift along the carbon framework is not restricted to cyclic systems but may also prevail in acyclic cases. In the example given in Scheme 11, minimization of dipolar repulsion between the two C-0 bonds mandates a preferred conformation of the initial radical, leading to a stereo-chemically defined alkene radical cation and, ultimately, to a single diastere-omer of the product [119]. [Pg.29]

In a rare study of a radical cyclization of fragmentation-derived alkene radical cations, it was discovered that the stereochemistry of the precursor can have significant consequences on the outcome of the reaction. Thus, a gluco-... [Pg.30]

In the gluco case (Scheme 13) the radical cyclization, with its requirement for the formation of a czs-fused ring junction [129,130], takes place uneventfully on the opposite face of the alkene radical cation to the one shielded by the phosphate anion, whereas in the manno series cyclization is severely retarded by the presence of the phosphate group above the face of the radical cation on which cyclization must occur. This steric retardation of the cyclization step results in a breakdown of chain propagation and results in the longer reaction times observed. Furthermore, the retardation of the radical cyclization step in the manno case enables the alkene radical cation to take... [Pg.31]

In a rare example of the use of phenylselenides as radical precursors in the generation of alkene radical cations by the fragmentation approach, Giese and coworkers generated a thymidine C3/,C4/ radical cation by expulsion of diethyl phosphate. Trapping experiments were conducted with methanol and with allyl alcohol (Scheme 16), when nucleophilic attack was followed by radical cyclization [66]. [Pg.32]


See other pages where Radicals alkenes is mentioned: [Pg.140]    [Pg.399]    [Pg.253]    [Pg.267]    [Pg.14]    [Pg.14]    [Pg.15]    [Pg.16]    [Pg.17]    [Pg.17]    [Pg.19]    [Pg.21]    [Pg.21]    [Pg.24]    [Pg.24]    [Pg.25]    [Pg.25]    [Pg.27]    [Pg.28]    [Pg.29]    [Pg.30]    [Pg.32]    [Pg.33]    [Pg.34]   
See also in sourсe #XX -- [ Pg.651 , Pg.657 , Pg.658 , Pg.659 ]

See also in sourсe #XX -- [ Pg.317 , Pg.323 , Pg.326 ]

See also in sourсe #XX -- [ Pg.651 , Pg.657 , Pg.658 , Pg.659 ]

See also in sourсe #XX -- [ Pg.545 , Pg.546 , Pg.547 , Pg.548 , Pg.549 , Pg.550 , Pg.554 ]




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Addition Reactions of Radicals to Substituted Alkenes

Addition Reactions of Radicals with Substituted Alkenes

Addition of radicals to alkenes

Additions radical-alkene/alkyne

Aldehydes free radical addition to alkenes

Alkanes and Alkenes Radical Initiated Chlorination of 1-Chlorobutane

Alkene epoxidation radical-mediated

Alkene free radical polymerization

Alkene radical arylations

Alkene radical cations, kinetics

Alkene radical cations, kinetics characterization

Alkene radical cations, kinetics nucleophiles, reaction with

Alkene radical cations, twisting

Alkene radical cyclization

Alkene undergoing radical polymerization

Alkenes Radical isomerisation

Alkenes allylic radical bromination

Alkenes anionic radical reactions

Alkenes carbon-centered radicals

Alkenes electrophilic, radical addition

Alkenes free radical addition

Alkenes homolytic radical additions

Alkenes hydroxyl radical reactions

Alkenes in radical chain reactions

Alkenes intramolecular radical attack

Alkenes nitrate radical reaction

Alkenes nitrate radicals, 243, Table

Alkenes organic radical ions

Alkenes radical addition

Alkenes radical addition of hydrogen bromid

Alkenes radical addition reactions

Alkenes radical attack

Alkenes radical bromination

Alkenes radical cation

Alkenes radical cations from

Alkenes radical cyclizations

Alkenes radical formation from

Alkenes radical polymerization

Alkenes radical reactions

Alkenes reactions with hydroxyl radical

Alkenes reactions with nitrate radical

Alkenes reactions with peroxy radicals

Alkenes stepwise radical

Alkenes with aldehydes, free-radical

Alkenes with hydrogen halides, free-radical

Alkenes with radicals

Alkenes with thiols, free-radical

Alkenes, -substituted, radical cations

Alkenes, homoallylic radicals

Alkenes, radical addition reversibility

Alkenes, radical addition stereoselectivity

Alkenes, radical addition steric effects

Alkenes, radical halogenation

Alkenes, radical halogenation cleavage

Alkenes, radical halogenation halogens

Alkenes, radical halogenation reaction with peroxides

Alkenes, radical halogenation reactions

Alkenes, radical halogenation reactivity with bromine

Alkenes, reaction with acyl radicals

Alkenes, reductive coupling radicals

Amines, alkene radical cations

And alkene radical cations

Atom and radical addition to alkenes

Atom transfer radical addition alkenes

Biological Additions of Radicals to Alkenes

Bromotrichloromethane, radical addition alkenes

Chiral Alkenes as Radical Traps

Cyclization, radical phenylthio-alkenes

Cyclization, radicals alkenes with aldehydes

Cyclization, radicals allenes with alkenes

Cyclization, radicals with alkenes

Cycloadditions, radical cation alkene

Elimination, radical alkene

Free radical addition of hydrogen bromide to alkene

Free radical alkenes

Free radical polymerization of alkenes

Free radicals from alkenes

Free radicals to alkenes

Free-Radical Addition of HBr to Alkenes

Halo-alkenes, radical

Halo-alkenes, radical cyclization

Haloalkanes, alkenes, radical addition

Hydrogen bromide free-radical addition, alkenes

Hydroxyl radical production from alkene

Mechanism, radical alkenes

Nitro alkene Radical homologation

Orbital Interaction Between a Nucleophilic Radical and an Electron-poor Alkene

Oximes-alkenes, radical

Oximes-alkenes, radical cyclization

Quinones, alkene radical cations

Radical Addition of RCHO, ACOX and Related Compounds to Alkenes

Radical Addition to Alkenes, Dienes, and Polyenes

Radical Additions to Alkenes Alkene Polymers

Radical Additions to Alkenes Chain-Growth Polymers

Radical Additions to Alkenes Polymers

Radical Polymerization of Alkenes Chain-Growth Polymers

Radical Reactions of Alkenes

Radical addition to alkenes

Radical additions to fluorinated alkenes

Radical cations of alkenes

Radical cations reactions with alkenes

Radical cyclizations via alkene addition

Radical initiators, addition alkenes

Radical ions, alkenes

Radical, addition of HBr to alkenes

Radical-alkene/alkyne additions alkenes

Radical-alkene/alkyne additions alkynes

Radical-chain addition to alkenes and

Radical-chain addition to alkenes and alkynes

Radicals reaction with alkenes

Radicals, and a-heteroatoms alkenes

Radicals, anti-Markovnikov alkenes

Radicals, reactivity with alkenes

Radicals, reduction alkenes

Radicals, reduction with alkenes

Silyl radical with alkene

The Addition of Radicals to an Alkene

The peroxide effect. Free radical addition of HBr to alkenes

Thiols, free radical addition to alkenes

Thiyl radicals alkenes

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