English

Copolymer adsorption kinetics at a selective liquid-liquid interface: Scaling theory and computer experiment

Soft Condensed Matter 2007-05-23 v2 Statistical Mechanics

Abstract

We consider the adsorption kinetics of a regular block-copolymer of total length NN and block size MM at a selective liquid-liquid interface in the limit of strong localization. We propose a simple analytic theory based on scaling considerations which describes the relaxation of the initial coil into a flat-shaped layer. The characteristic times for attaining equilibrium values of the gyration radius components perpendicular and parallel to the interface are predicted to scale with chain length NN and block length MM as τM1+2ν\tau_{\perp} \propto M^{1+2\nu} (here ν0.6\nu\approx 0.6 is the Flory exponent) and as τN2\tau_{\parallel} \propto N^2, although initially the rate of coil flattening is expected to decrease with block size as M1\propto M^{-1}. Since typically NMN\gg M for multiblock copolymers, our results suggest that the flattening dynamics proceeds faster perpendicular rather than parallel to the interface. We also demonstrate that these scaling predictions agree well with the results of extensive Monte Carlo simulations of the localization dynamics.

Keywords

Cite

@article{arxiv.cond-mat/0504056,
  title  = {Copolymer adsorption kinetics at a selective liquid-liquid interface: Scaling theory and computer experiment},
  author = {Andrea Corsi and Andrey Milchev and Vakhtang G. Rostiashvili and Thomas A. Vilgis},
  journal= {arXiv preprint arXiv:cond-mat/0504056},
  year   = {2007}
}

Comments

4 pages, 4 figures, submited to Europhys. Lett

R2 v1 2026-07-22T11:15:36.102Z