Slip-spring simulations of different constraint release environments for linear polymer chains

The constraint release (CR) mechanism has important effects on polymer relaxation and the chains will show different relaxation behaviour in conditions of monodisperse, bidisperse and other topological environments. By comparing relaxation data of linear polyisoprene (PI) chains dissolved in very lo...

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Main Authors: Teng Ma, Guochang Lin, Huifeng Tan
Format: Article
Language:English
Published: The Royal Society 2020-03-01
Series:Royal Society Open Science
Subjects:
Online Access:https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.191046
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spelling doaj-5ce29bb4a31d4db9ba2bc19de6cad4a82020-11-25T03:59:24ZengThe Royal SocietyRoyal Society Open Science2054-57032020-03-017310.1098/rsos.191046191046Slip-spring simulations of different constraint release environments for linear polymer chainsTeng MaGuochang LinHuifeng TanThe constraint release (CR) mechanism has important effects on polymer relaxation and the chains will show different relaxation behaviour in conditions of monodisperse, bidisperse and other topological environments. By comparing relaxation data of linear polyisoprene (PI) chains dissolved in very long matrix and monodisperse melts, Matsumiya et al. showed that CR mechanism accelerates both dielectric and viscoelastic relaxation (Matsumiya et al. 2013 Macromolecules 46, 6067. (doi:10.1021/ma400606n)). In this work, the experimental data reported by Matsumiya et al. are reproduced using the single slip-spring (SSp) model and the CR accelerating effects on both dielectric and viscoelastic relaxation are validated by simulations. This effect on viscoelastic relaxation is more pronounced. The coincidence for end-to-end relaxation and the viscoelastic relaxation has also been checked using probe version SSp model. A variant of SSp with each entanglement assigning a characteristic lifetime is also proposed to simulate various CR environment flexibly. Using this lifetime version SSp model, the correct relaxation function can be obtained with equal numbers of entanglement destructions by CR and reptation/contour length fluctuation (CLF) for monodisperse melts. Good agreement with published experiment data is also obtained for bidisperse melts, which validates the ability to correctly describe the CR environment of the lifetime version model.https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.191046slip-spring modelconstraint releasepolymer chains
collection DOAJ
language English
format Article
sources DOAJ
author Teng Ma
Guochang Lin
Huifeng Tan
spellingShingle Teng Ma
Guochang Lin
Huifeng Tan
Slip-spring simulations of different constraint release environments for linear polymer chains
Royal Society Open Science
slip-spring model
constraint release
polymer chains
author_facet Teng Ma
Guochang Lin
Huifeng Tan
author_sort Teng Ma
title Slip-spring simulations of different constraint release environments for linear polymer chains
title_short Slip-spring simulations of different constraint release environments for linear polymer chains
title_full Slip-spring simulations of different constraint release environments for linear polymer chains
title_fullStr Slip-spring simulations of different constraint release environments for linear polymer chains
title_full_unstemmed Slip-spring simulations of different constraint release environments for linear polymer chains
title_sort slip-spring simulations of different constraint release environments for linear polymer chains
publisher The Royal Society
series Royal Society Open Science
issn 2054-5703
publishDate 2020-03-01
description The constraint release (CR) mechanism has important effects on polymer relaxation and the chains will show different relaxation behaviour in conditions of monodisperse, bidisperse and other topological environments. By comparing relaxation data of linear polyisoprene (PI) chains dissolved in very long matrix and monodisperse melts, Matsumiya et al. showed that CR mechanism accelerates both dielectric and viscoelastic relaxation (Matsumiya et al. 2013 Macromolecules 46, 6067. (doi:10.1021/ma400606n)). In this work, the experimental data reported by Matsumiya et al. are reproduced using the single slip-spring (SSp) model and the CR accelerating effects on both dielectric and viscoelastic relaxation are validated by simulations. This effect on viscoelastic relaxation is more pronounced. The coincidence for end-to-end relaxation and the viscoelastic relaxation has also been checked using probe version SSp model. A variant of SSp with each entanglement assigning a characteristic lifetime is also proposed to simulate various CR environment flexibly. Using this lifetime version SSp model, the correct relaxation function can be obtained with equal numbers of entanglement destructions by CR and reptation/contour length fluctuation (CLF) for monodisperse melts. Good agreement with published experiment data is also obtained for bidisperse melts, which validates the ability to correctly describe the CR environment of the lifetime version model.
topic slip-spring model
constraint release
polymer chains
url https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.191046
work_keys_str_mv AT tengma slipspringsimulationsofdifferentconstraintreleaseenvironmentsforlinearpolymerchains
AT guochanglin slipspringsimulationsofdifferentconstraintreleaseenvironmentsforlinearpolymerchains
AT huifengtan slipspringsimulationsofdifferentconstraintreleaseenvironmentsforlinearpolymerchains
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