Field - Driven Translocation of Regular Block Copolymers through a Selective Liquid - Liquid Interface
Abstract
We propose a simple scaling theory describing the variation of the mean first passage time (MFPT) of a regular block copolymer of chain length and block size which is dragged through a selective liquid-liquid interface by an external field . The theory predicts a non-Arrhenian vs. relationship which depends strongly on the size of the blocks, , and rather weakly on the total polymer length, . The overall behavior is strongly influenced by the degree of selectivity between the two solvents . The variation of with and in the regimes of weak and strong selectivity of the interface is also studied by means of computer simulations using a dynamic Monte Carlo coarse-grained model. Good qualitative agreement with theoretical predictions is found. The MFPT distribution is found to be well described by a - distribution. Transition dynamics of ring- and telechelic polymers is also examined and compared to that of the linear chains. The strong sensitivity of the ``capture'' time with respect to block length suggests a possible application as a new type of chromatography designed to separate and purify complex mixtures with different block sizes of the individual macromolecules.
Keywords
Cite
@article{arxiv.cond-mat/0610432,
title = {Field - Driven Translocation of Regular Block Copolymers through a Selective Liquid - Liquid Interface},
author = {A. Corsi and A. Milchev and V. G. Rostiashvili and T. A. Vilgis},
journal= {arXiv preprint arXiv:cond-mat/0610432},
year = {2009}
}
Comments
20 pages, 10 figures