English

Molecular dynamics simulations of active entangled polymers reptating through a passive mesh

Soft Condensed Matter 2022-11-01 v1

Abstract

In this work, we explore the dynamics of active entangled chains using molecular dynamics simulations of a modified Kremer-Grest model. The active chains are diluted in a mesh of very long passive linear chains, to avoid constraint release effects, and an active force is applied to the monomers in a way that it imparts a constant polar drift velocity along the primitive path. The simulation results show that, over a wide range of activity values, the conformational properties of the chains and the tubes are not affected, but the dynamics of the chains are severely modified. Despite not having an explicit tube, the simulations verify all the predictions of the theory about all possible observables very accurately, including a diffusion coefficient that becomes independent of the molecular weight at moderate values of the activity. Overall, this work provides novel information on the study of active entangled polymers, giving a route map for studying this phenomenon and an efficient way of obtaining a polar activity that reproduces the physics of the active reptation theory.

Keywords

Cite

@article{arxiv.2210.16942,
  title  = {Molecular dynamics simulations of active entangled polymers reptating through a passive mesh},
  author = {Andres R. Tejedor and Raquel Carracedo and Jorge Ramírez},
  journal= {arXiv preprint arXiv:2210.16942},
  year   = {2022}
}

Comments

45 pages, 9 figures