Tailored synthesis of branched and network polymer structures by electrostatic self-assembly and covalent fixation with telechelic poly(THF) having N-phenylpyrrolidinium salt groups
H. Oike et al., Tailored synthesis of branched and network polymer structures by electrostatic self-assembly and covalent fixation with telechelic poly(THF) having N-phenylpyrrolidinium salt groups, MACROMOLEC, 32(15), 1999, pp. 4819-4825
Uniform size poly(THF)s having N-phenylpyrrolidinium salt as a single and b
oth end groups (1 and 2) were synthesized as a reactive precursor to produc
e star polymers, polymacromonomers, and model networks through the "electro
static self-assembly and covalent fixation" technique. The N-phenylpyrrolid
inium salt group was found to undergo a ring-opening reaction exclusively b
y a series of carboxylate counteranions at an appropriately elevated temper
ature, in contrast to the case of the N-methylpyrrolidinium salt group, whi
ch caused a concurrent demethylation by a nucleophilic attack of carboxylat
e anions on the N-methyl group. In particular, even a weak nucleophile such
as p-nitrobenzoate counteranion was able to cause a quantitative ring-open
ing reaction at 80 degrees C, in contrast to the unreactive N-methylpyrroli
dinium salt group at the same conditions. The improved selectivity as well
as reactivity in the ring-opening reaction of N-phenylpyrrolidinium salt gr
oup allowed one to utilize 1 and 2 to produce effectively covalently linked
star polymers, polymacromonomers, and model networks, first by the isolati
on of the ionically linked polymer assemblies formed through the ion-exchan
ge reaction of either 1 or 2 with polycarboxylate salts and the subsequent
heat treatment of them.