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Atomistic Monte Carlo simulation of cis-1,4 polyisoprene melts. I. Single temperature end-bridging Monte Carlo simulations
Results are presented for the thermodynamic, conformational, and structural properties of cis-1,4 polyisoprene (PI) melts from detailed atomistic Monte Carlo simulations. All simulations have been exe...
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Atomistic Monte Carlo simulation of cis-1,4 polyisoprene melts. II. Parallel tempering end-bridging Monte Carlo simulations

J. Chem. Phys. 115, 11352 (2001); doi:10.1063/1.1416491

Issue Date: 22 December 2001

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M. Doxastakis
Department of Chemical Engineering, University of Patras, 26500 Patras, Greece
Institute of Chemical Engineering and High Temperature Chemical Processes, P.O. Box 1414, 26500 Patras, Greece


V. G. Mavrantzas
Institute of Chemical Engineering and High Temperature Chemical Processes, P.O. Box 1414, 26500 Patras, Greece

D. N. Theodorou
Department of Chemical Engineering, University of Patras, 26500 Patras, Greece
Institute of Chemical Engineering and High Temperature Chemical Processes, P.O. Box 1414, 26500 Patras, Greece

Results are presented for the temperature dependence of the thermodynamic and conformational properties of cis-1,4 polyisoprene (PI) melts from detailed atomistic parallel-tempering end-bridging Monte Carlo (ptEBMC) simulations. The simulations have been performed with a C80 cis-1,4 PI melt system which was simultaneously equilibrated at 10 different temperatures, ranging from T = 328 K up to T = 513 K, in the semigrand NnPTµ* statistical ensemble. This strategy allowed system equilibration at temperatures as low as T = 328 K (where most available experimental data have been obtained), for which the performance of the single temperature end-bridging Monte Carlo (EBMC) algorithm was seen to deteriorate. Results for the variation of the specific volume of the cis-1,4 PI melt with temperature at constant mean chain length are found to be always within 1% of experimentally reported values and analytical fits to these values. Additional results for the equilibrium mean-square chain end-to-end distance <R2>0, which can be fully equilibrated with the algorithm employed here, show that the model predictions for <R2>0 are rather insensitive to temperature variations, at least over the range of temperatures studied here. This behavior is explained by investigating the temperature variation of the distributions of the three types of torsion angles in a PI molecule. The conformational predictions of the ptEBMC simulations are closest to experiment at the lower temperatures, where they almost match the measured value of <R2>0. Detailed results are also presented for the performance of the ptEBMC algorithm, demonstrating its unique capability to equilibrate the atomistically detailed cis-1,4 PI melt. ©2001 American Institute of Physics.
History: Received 26 February 2001; accepted 17 September 2001
Permalink: http://link.aip.org/link/?JCPSA6/115/11352/1
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EDITORIALLY RELATED

  1. Atomistic Monte Carlo simulation of cis-1,4 polyisoprene melts. I. Single temperature end-bridging Monte Carlo simulations
    M. Doxastakis et al.
    J. Chem. Phys. 115, 11339 (2001)

KEYWORDS and PACS

Keywords
PACS
  • 61.25.Hq
    Structure of solids and liquids; crystallography Studies of specific liquid structures Macromolecular and polymer solutions; polymer melts; swelling
  • 61.20.Ja
    Structure of solids and liquids; crystallography Structure of liquids Computer simulation of liquid structure
  • YEAR: 2001

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PUBLICATION DATA

ISSN:
0021-9606 (print)   1089-7690 (online)
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