TY - JOUR
T1 - Phase separation kinetics of liquid crystalline polymers
T2 - Effect of orientational order
AU - Fukuda, Junichi
PY - 1999/1/1
Y1 - 1999/1/1
N2 - Phase separation kinetics of main-chain liquid crystalline polymers (LCP’s) is investigated by numerically solving time-dependent Ginzburg-Landau equations for the compositional order parameter φ and the orientational order parameter [Formula Presented] The kinetic coefficients are evaluated by using the biased reptation model with a microscopic model of wormlike chains. In numerical simulations we find the formation of a percolated network structure rich in LCP’s that resembles that observed in experiments. In our kinetic equations the coupling between compositional order and orientational order appears in (i) the presence of the off-diagonal kinetic coefficient [Formula Presented] and (ii) the dependence of the kinetic coefficients on [Formula Presented] (LCP’s tend to diffuse parallel to the nematic orientation). We show by a linear analysis of the growing modes that the presence of [Formula Presented] suppresses the growth of the compositional order in the early stage. We also show that the tendency of LCP’s to diffuse parallel to the nematic orientation is responsible for the breakage of the network structure.
AB - Phase separation kinetics of main-chain liquid crystalline polymers (LCP’s) is investigated by numerically solving time-dependent Ginzburg-Landau equations for the compositional order parameter φ and the orientational order parameter [Formula Presented] The kinetic coefficients are evaluated by using the biased reptation model with a microscopic model of wormlike chains. In numerical simulations we find the formation of a percolated network structure rich in LCP’s that resembles that observed in experiments. In our kinetic equations the coupling between compositional order and orientational order appears in (i) the presence of the off-diagonal kinetic coefficient [Formula Presented] and (ii) the dependence of the kinetic coefficients on [Formula Presented] (LCP’s tend to diffuse parallel to the nematic orientation). We show by a linear analysis of the growing modes that the presence of [Formula Presented] suppresses the growth of the compositional order in the early stage. We also show that the tendency of LCP’s to diffuse parallel to the nematic orientation is responsible for the breakage of the network structure.
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U2 - 10.1103/PhysRevE.59.3275
DO - 10.1103/PhysRevE.59.3275
M3 - Article
AN - SCOPUS:0001540144
SN - 1063-651X
VL - 59
SP - 3275
EP - 3288
JO - Physical Review E - Statistical Physics, Plasmas, Fluids, and Related Interdisciplinary Topics
JF - Physical Review E - Statistical Physics, Plasmas, Fluids, and Related Interdisciplinary Topics
IS - 3
ER -