Morphological Phase Behavior
of Poly(RTIL)-Containing
Diblock Copolymer Melts
- Publication date
- Publisher
Abstract
The development of nanostructured polymeric systems containing
directionally continuous poly(ionic liquid) (poly(IL)) domains has
considerable implications toward a range of transport-dependent, energy-based
technology applications. The controlled, synthetic integration of
poly(IL)s into block copolymer (BCP) architectures provides a promising
means to this end, based on their inherent ability to self-assemble
into a range of defined, periodic morphologies. In this work, we report
the melt-state phase behavior of an imidazolium-containing alkyl–ionic
BCP system, derived from the sequential ring-opening metathesis polymerization
(ROMP) of imidazolium- and alkyl-substituted norbornene monomer derivatives.
A series of 16 BCP samples were synthesized, varying both the relative
volume fraction of the poly(norbornene dodecyl ester) block (<i>f</i><sub>DOD</sub> = 0.42–0.96) and the overall molecular
weights of the block copolymers (<i>M</i><sub>n</sub> values
from 5000–20 100 g mol<sup>–1</sup>). Through
a combination of small-angle X-ray scattering (SAXS) and dynamic rheology,
we were able to delineate clear compositional phase boundaries for
each of the classic BCP phases, including lamellae (Lam), hexagonally
packed cylinders (Hex), and spheres on a body-centered-cubic lattice
(S<sub>BCC</sub>). Additionally, a liquid-like packing (LLP) of spheres
was found for samples located in the extreme asymmetric region of
the phase diagram, and a persistent coexistence of Lam and Hex domains
was found in lieu of the bicontinuous cubic gyroid phase for samples
located at the intersection of Hex and Lam regions. Thermal disordering
was opposed even in very low molecular weight samples, detected only
when the composition was highly asymmetric (<i>f</i><sub>DOD</sub> = 0.96). Annealing experiments on samples exhibiting Lam
and Hex coexistence revealed the presence of extremely slow transition
kinetics, ultimately selective for one or the other but not the more
complex gyroid phase. In fact, no evidence of the bicontinuous network
was detected over a 2 month annealing period. The ramifications of
these results for transport-dependent applications targeting the use
of highly segregated poly(IL)-containing BCP systems are carefully
considered