English

Tension enhancement in branched macromolecules upon adhesion on a solid substrate

Soft Condensed Matter 2015-06-03 v2

Abstract

The effect of self-generated tension in the backbone of a bottle-brush (BB) macromolecule, adsorbed on an attractive surface, is studied by means of Molecular Dynamics simulations of a coarse-grained bead-spring model in the good solvent regime. The BB-molecule is modeled as a backbone chain of LL beads, connected by breakable bonds and with side chains, tethered pairwise to each monomer of the backbone. Our investigation is focused on several key questions that determine the bond scission mechanism and the ensuing degradation kinetics: how are frequency of bond scission and self-induced tension distributed along the BB-backbone at different grafting density σg\sigma_g of the side chains? How does tension ff depend on the length of the side chains NN, and on the strength of surface adhesion ϵs\epsilon_s? We examine the monomer density distribution profiles across the BB-backbone at different ϵs\epsilon_s and relate it to adsorption-induced morphological changes of the macromolecule whereby side chains partially desorb while the remaining chains spread better on the surface. Our simulation data are found to be in qualitative agreement with experimental results and recent theoretical predictions. Yet we demonstrate that the interval of parameter values where these predictions hold is limited in NN. Thus, at high values of ϵs\epsilon_s, too long side chains mutually block each other and freeze effectively the bottle-brush molecule.

Keywords

Cite

@article{arxiv.1112.2552,
  title  = {Tension enhancement in branched macromolecules upon adhesion on a solid substrate},
  author = {J. Paturej and L. Kuban and A. Milchev and T. A. Vilgis},
  journal= {arXiv preprint arXiv:1112.2552},
  year   = {2015}
}

Comments

6 pages, 8 figures

R2 v1 2026-06-21T19:49:46.483Z