A multi-chain polymer slip-spring model with fluctuating number of entanglements: Density fluctuations, confinement, and phase separation

2017 | journal article. A publication with affiliation to the University of Göttingen.

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​Ramirez-Hernandez, Abelardo, Brandon L. Peters, Ludwig Schneider, Marat Andreev, Jay D. Schieber, Marcus Mueller, and Juan J. de Pablo. "A multi-chain polymer slip-spring model with fluctuating number of entanglements: Density fluctuations, confinement, and phase separation​." ​The Journal of Chemical Physics ​146, no. 1 (2017): ​014903​. ​https://doi.org/10.1063/1.4972582.

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Authors
Ramirez-Hernandez, Abelardo; Peters, Brandon L.; Schneider, Ludwig ; Andreev, Marat; Schieber, Jay D.; Mueller, Marcus; de Pablo, Juan J.
Abstract
Coarse grained simulation approaches provide powerful tools for the prediction of the equilibrium properties of polymeric systems. Recent efforts have sought to develop coarse-graining strategies capable of predicting the non-equilibrium behavior of entangled polymeric materials. Slip-link and slip-spring models, in particular, have been shown to be capable of reproducing several key aspects of the linear response and rheology of polymer melts. In this work, we extend a previously proposed multi-chain slip-spring model in a way that correctly incorporates the effects of the fluctuating environment in which polymer segments are immersed. The model is used to obtain the equation of state associated with the slip-springs, and the results are compared to those of related numerical approaches and an approximate analytical expression. The model is also used to examine a polymer melt confined into a thin film, where an inhomogeneous distribution of polymer segments is observed, and the corresponding inhomogeneities associated with density fluctuations are reflected on the spatial slip-spring distribution.
Issue Date
2017
Status
published
Publisher
Amer Inst Physics
Journal
The Journal of Chemical Physics 
ISSN
1089-7690; 0021-9606

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