Anisotropic diffusion and hydrodynamic effects on lamellar relaxation and grain boundary motion in a model of a block copolymer
Chi-Deuk Yoo, Jorge Vinals

TL;DR
This paper investigates how anisotropic diffusion and hydrodynamic flows influence the relaxation dynamics and grain boundary motion in lamellar phases of diblock copolymers, revealing hydrodynamics accelerate relaxation while anisotropic diffusion impacts boundary behavior.
Contribution
The study extends a two-fluid model to include tensor mobility and hydrodynamics for block copolymers, analyzing their effects on lamellar relaxation and grain boundary motion.
Findings
Hydrodynamic flows significantly speed up lamellar relaxation.
Anisotropic diffusion has negligible effect on linear relaxation at long wavelengths.
Grain boundary motion is notably affected by anisotropic diffusion.
Abstract
We consider the effects of anisotropic diffusion and hydrodynamic flows on the relaxation time scales of the lamellar phase of a diblock copolymer. We first extend the two-fluid model of a polymer solution to a block copolymer, and include a tensor mobility for the diffusive relaxation of monomer composition which is consistent with the uniaxial symmetry of the lamellar phase. The resulting equation is coupled to the momentum conservation equation, allowing also for a dissipative stress tensor for a uniaxial fluid. We then study the linear relaxation of weakly perturbed lamellae, and the motion of a tilt grain boundary separating two semi-infinite domains. We find that anisotropic diffusion has a negligible effect on the linear relaxation of the layered phase (in the long wavelenght limit), whereas the introduction of hydrodynamic flows considerably speeds the decay to a rate…
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Taxonomy
TopicsBlock Copolymer Self-Assembly · Rheology and Fluid Dynamics Studies · Material Dynamics and Properties
