Molecular-dynamics simulation study of dielectric relaxation in a 1,4-polybutadiene melt

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Publication Type Journal Article
School or College College of Engineering
Department Materials Science & Engineering
Program Center for the Simulation of Accidental Fires and Explosions (C-SAFE)
Creator Smith, Grant D.; Borodin, Oleg
Other Author Paul, Wolfgang
Title Molecular-dynamics simulation study of dielectric relaxation in a 1,4-polybutadiene melt
Date 2002
Description We have carried out atomistic molecular dynamics simulations of a melt of 1,4-poly(butadiene) from temperatures well above the experimentally observed merging of the primary a process and secondary b process down to temperatures approaching the experimentally observed bifurcation temperature. The relaxation strength and maximum loss frequency and its temperature dependence for the combined a-b dielectric relaxation process from simulations were in good agreement with experiment. The maximum loss frequency, melt viscosity, chain normal-mode relaxation times and torsional autocorrelation times were found to exhibit nearly identical non-Arrhenius temperature dependencies well represented by a Vogel-Fulcher fit with parameters in good agreement with experimental values obtained from dielectric and viscosity measurements.
Type Text
Publisher American Institute of Physics (AIP)
Journal Title The Journal of Chemical Physics
Volume 117
Issue 22
First Page 10350
Last Page 10359
DOI 10.1063/1.1518684
citatation_issn 219606
Subject Polymer melts; 1,4-polybutadiene; Chain dynamics; Conformational dynamics
Subject LCSH Dielectric relaxation; Polymer melting; Molecular dynamics -- Computer simulation
Language eng
Bibliographic Citation Smith, G. D., Borodin, O., & Paul, W. (2002). Molecular-dynamics simulation study of dielectric relaxation in a 1,4-polybutadiene melt. Journal of Chemical Physics, 117(22), 10350-9.
Rights Management (c)American Institute of Physics. The following article appeared in Smith, G. D., Borodin, O., & Paul, W., Journal of Chemical Physics, 117(22), 2002. and may be found at http://dx.doi.org/10.1063/1.1518684.
Format Medium application/pdf
Format Extent 164,333 bytes
Identifier ir-main,6996
ARK ark:/87278/s6s4795n
Setname ir_uspace
ID 703072
Reference URL https://collections.lib.utah.edu/ark:/87278/s6s4795n
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