Entangled polymer chain melts: orientation and deformation dependent tube confinement and interchain entanglement elasticity
By:
Sussman, Daniel; Schweizer, Kenneth
Journal Name:
The Journal of Chemical Physics
Page Number:
234904-234904
Volume:
139
Issue Number:
n/a
Publication Date:
February 21, 2014
Abstract
The phenomenological reptation-tube model is based on a single chain perspective and was originally
proposed to explain the remarkable viscoelastic properties of dense entangled polymer liquids.
However, simulations over the last two decades have revealed a fundamental tension in the model: it
assumes that bonded, single-chain backbone stresses are the sole polymer contribution to the slowly
relaxing component of stress storage and elasticity, but mounting evidence suggests that at the local
level of forces it is interchain contributions that dominate, as in simple liquids. Here we show
that based on a chain model constructed at the level of self-consistently determined primitive paths,
an explicit force-level treatment of the correlated intermolecular contributions to stress that arise
from chain uncrossability can essentially quantitatively predict the entanglement plateau modulus
associated with the soft rubbery response of polymer liquids. Analogies to transient localization and
elasticity in glass-forming liquids are identified. Predictions for the effect of macroscopic deformation
and anisotropic orientational order on the tube diameter are also made. Based on the interchain
stress perspective the theory reproduces some aspects of the rheological response to shear and extensional
deformations associated with the single chain tube model.