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Hydrogen carbon halides

Carbon-Carbon Hydrogen Halides Predicting Markovnikov Regiochemistry (page 412)... [Pg.1304]

MarkownikofT s rule The rule states that in the addition of hydrogen halides to an ethyl-enic double bond, the halogen attaches itself to the carbon atom united to the smaller number of hydrogen atoms. The rule may generally be relied on to predict the major product of such an addition and may be easily understood by considering the relative stabilities of the alternative carbenium ions produced by protonation of the alkene in some cases some of the alternative compound is formed. The rule usually breaks down for hydrogen bromide addition reactions if traces of peroxides are present (anti-MarkownikofT addition). [Pg.251]

The unequal distribution of charge produced when elements of different electronegativities combine causes a polarity of the covalent bond joining them and, unless this polarity is balanced by an equal and opposite polarity, the molecule will be a dipole and have a dipole moment (for example, a hydrogen halide). Carbon tetrachloride is one of a relatively few examples in which a strong polarity does not result in a molecular dipole. It has a tetrahedral configuration... [Pg.51]

Hydrogen fluoride also effects replacement reactions in organic compounds. For example, carbon tetrachloride yields a mixture of chlorofluoromethanes CCI3F, CCI2F2 and so on. Like all the other hydrogen halides, hydrogen fluoride adds on to olefins, for example ... [Pg.330]

A halogen atom directly attached to a benzene ring is usually unreactive, unless it is activated by the nature and position of certain other substituent groups. It has been show n by Ullmann, however, that halogen atoms normally of low reactivity will condense with aromatic amines in the presence of an alkali carbonate (to absorb the hydrogen halide formed) and a trace of copper powder or oxide to act as a catalyst. This reaction, known as the Ullmant Condensation, is frequently used to prepare substituted diphenylamines it is exemplified... [Pg.217]

The reaction of an alcohol with a hydrogen halide is a substitution A halogen usually chlorine or bromine replaces a hydroxyl group as a substituent on carbon Calling the reaction a substitution tells us the relationship between the organic reactant and its prod uct but does not reveal the mechanism In developing a mechanistic picture for a par ticular reaction we combine some basic principles of chemical reactivity with experi mental observations to deduce the most likely sequence of steps... [Pg.153]

Primary alcohols do not react with hydrogen halides by way of carbo cation intermediates The nucleophilic species (Br for example) attacks the alkyloxonium ion and pushes off a water molecule from carbon m a bimolecular step This step is rate determining and the mechanism is Sn2... [Pg.181]

In principle a hydrogen halide can add to an unsymmetncal alkene (an alkene m which the two carbons of the double bond are not equivalently substituted) m either of two direc tions In practice addition is so highly regioselective as to be considered regiospeciflc... [Pg.236]

Acids other than hydrogen halides also add to the carbon-carbon bond of alkenes Concen trated sutfuric acid for example reacts with certain alkenes to form alkyl hydrogen sulfates... [Pg.245]

A proton and a halogen add to the double bond of an alkene to yield an alkyl halide Addition proceeds in ac cordance with Markovnikov s rule hy drogen adds to the carbon that has the greater number of hydrogens halide to the carbon that has the fewer hydro gens... [Pg.272]

Alkynes react with many of the same electrophilic reagents that add to the carbon-carbon double bond of alkenes Hydrogen halides for example add to alkynes to form alkenyl halides... [Pg.377]

In the presence of excess hydrogen halide gemmal dihalides are formed by sequen tial addition of two molecules of hydrogen halide to the carbon-carbon triple bond... [Pg.378]

The hydrogen halide adds to the initially formed alkenyl halide m accordance with Markovmkov s rule Overall both protons become bonded to the same carbon and both halogens to the adjacent carbon... [Pg.378]

Both resonance forms of the allylic carbocation from 1 3 cyclopentadiene are equivalent and so attack at either of the carbons that share the positive charge gives the same product 3 chlorocyclopentene This is not the case with 1 3 butadiene and so hydrogen halides add to 1 3 butadiene to give a mixture of two regioisomeric allylic halides For the case of electrophilic addition of hydrogen bromide at -80°C... [Pg.405]

Just as the carbon-oxygen bond of alcohols is cleaved on reaction with hydrogen halides (Section 4 8) so too is an ether linkage broken... [Pg.674]

The carbon-halogen bonds of aryl halides are both shorter and stronger than the carbon-halogen bonds of alkyl halides In this respect as well as m their chemical behavior they resemble vinyl halides more than alkyl halides A hybridization effect seems to be responsible because as the data m Table 23 1 indicate similar patterns are seen for both carbon-hydrogen bonds and carbon-halogen bonds An increase m s... [Pg.971]

The cleavage of dialkyl ethers by hydrogen halides was discussed in Section 16 8 where It was noted that the same pair of alkyl halides results irrespective of the order in which the carbon-oxygen bonds of the ether are broken... [Pg.1010]

The use of fire retardants in polymers has become more complicated with the realisation that more deaths are probably caused by smoke and toxic combustion products than by fire itself. The suppression of a fire by the use of fire retardants may well result in smouldering and the production of smoke, rather than complete combustion with little smoke evolution. Furthermore, whilst complete combustion of organic materials leads to the formation of simple molecules such as CO2, H2O, N2, SO2 and hydrogen halides, incomplete combustion leads to the production of more complex and noxious materials as well as the simple structured but highly poisonous hydrogen cyanide and carbon monoxide. [Pg.149]

A significant modification in the stereochemistry is observed when the double bond is conjugated with a group that can stabilize a carbocation intermediate. Most of the specific cases involve an aryl substituent. Examples of alkenes that give primarily syn addition are Z- and -l-phenylpropene, Z- and - -<-butylstyrene, l-phenyl-4-/-butylcyclohex-ene, and indene. The mechanism proposed for these additions features an ion pair as the key intermediate. Because of the greater stability of the carbocations in these molecules, concerted attack by halide ion is not required for complete carbon-hydrogen bond formation. If the ion pair formed by alkene protonation collapses to product faster than reorientation takes place, the result will be syn addition, since the proton and halide ion are initially on the same side of the molecule. [Pg.355]

There are several methods for generation of benzyne in addition to base-catalyzed elimination of hydrogen halide from a halobenzene, and some of these are more generally applicable for preparative work. Probably the most convenient method is diazotization of o-aminobenzoic acid. Concerted loss of nitrogen and carbon dioxide follows diazotization and generates benzyne. Benzyne can be formed in this manner in the presence of a variety of compounds with which it reacts rapidly. [Pg.595]

From the thorough studies of the mechanism of elimination of hydrogen halides from vicinal fluorohalo compounds, it follows that the result of elimination depends on the stabihty of the carbanionic species in which the negative charge is on the carbon P to fluorine and a to chlorine or bromine [43, 44, 45, 46, 47, 48, 49, 50, 51. 52, 53, 54]... [Pg.896]


See other pages where Hydrogen carbon halides is mentioned: [Pg.472]    [Pg.237]    [Pg.239]    [Pg.240]    [Pg.378]    [Pg.405]    [Pg.288]    [Pg.64]    [Pg.353]    [Pg.138]    [Pg.426]    [Pg.888]    [Pg.237]    [Pg.240]    [Pg.405]    [Pg.149]    [Pg.342]    [Pg.170]    [Pg.644]   
See also in sourсe #XX -- [ Pg.2 , Pg.2 , Pg.3 , Pg.5 , Pg.14 ]




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