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Activation energy anionic chain polymerization

In general, the activation energies for both cationic and anionic polymerization are small. For this reason, low-temperature conditions are normally used to reduce side reactions. Low temperatures also minimize chain transfer reactions. These reactions produce low-molecular weight polymers by disproportionation of the propagating polymer ... [Pg.307]

Various modes of termination of anionic polymerization can be visualized. The growing chain end could split out a hydride ion to leave a residual double bond. This is, however, a high activation energy process and has not as yet been reported in the cases where alkali metal cations are present. It is important in systems involving Al—C bonds, however (73). A second possibility is termination through isomerization of the carbanion to an inactive anion. Proton transfer from solvent, polymer, or monomer would also cause termination of the growing chain. Lastly, the carbanion could undergo an irreversible reaction with solvent or monomer. The latter three types have been shown or postulated as termination or transfer reactions. [Pg.131]


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See also in sourсe #XX -- [ Pg.429 , Pg.430 , Pg.431 , Pg.432 ]

See also in sourсe #XX -- [ Pg.429 , Pg.430 , Pg.431 , Pg.432 ]




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Activated polymerization

Activation energy anions

Activation energy chains

Activation energy polymerization

Activator polymerization

Anion activation

Anionic activated

Anionic chain polymerization

Energy polymerization

Polymerization activity

Polymerization, activation

Polymerization, activation anionic

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