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Microscopic Structure, Conformation, and Dynamics of Ring and Linear Poly(ethylene oxide) Melts from Detailed Atomistic Molecular Dynamics Simulations: Dependence on Chain Length and Direct Comparison with Experimental Data

Authors :
Dimitrios G. Tsalikis
Rossana Pasquino
Dimitris Vlassopoulos
Michael Monkenbusch
Thanasis Koukoulas
Dieter Richter
Wim Pyckhout-Hintzen
Andreas Wischnewski
Vlasis G. Mavrantzas
Tsalikis, Dimitrios G.
Koukoulas, Thanasi
Mavrantzas, Vlasis G.
Pasquino, Rossana
Vlassopoulos, Dimitri
Pyckhout Hintzen, Wim
Wischnewski, Andrea
Monkenbusch, Michael
Richter, Dieter
Source :
Macromolecules. 50:2565-2584
Publication Year :
2017
Publisher :
American Chemical Society (ACS), 2017.

Abstract

We present results from very long (on the order of several microseconds) atomistic molecular dynamics (MD) simulations for the density, microscopic structure, conformation, and local and segmental dynamics of pure, strictly monodisperse ring and linear poly(ethylene oxide) (PEO) melts, ranging in molar mass from ∼5300 to ∼20 000 g/mol. The MD results are compared with recent experimental data for the chain center-of-mass self-diffusion coefficient and the normalized single-chain dynamic structure factor obtained from small-angle neutron scattering, neutron spin echo, and pulse-field gradient NMR, and remarkable qualitative and quantitative agreement is observed, despite certain subtle disagreements in important details regarding mainly internal ring motion (loop dynamics). A detailed normal-mode analysis allowed us to check the degree of consistency of ring PEO melt dynamics with the ring Rouse model and indicated a strong reduction of the normalized mode amplitudes for the smaller mode numbers (compared ...

Details

ISSN :
15205835 and 00249297
Volume :
50
Database :
OpenAIRE
Journal :
Macromolecules
Accession number :
edsair.doi.dedup.....8b05738d8ca9e9c42dd7ecbbc2d600dc