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Journal ArticleDOI

Atomistic molecular dynamics study of cross-linked phenolic resins

Atsushi Izumi, +2 more
- 25 Apr 2012 - 
- Vol. 8, Iss: 19, pp 5283-5292
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TLDR
In this article, the authors analyzed cross-linked phenolic resins by using atomistic molecular dynamics simulations and found that cross-links suppressed local segmental motions in the crosslinked structure, probably at the region around the linear and terminal phenols.
Abstract
In this study, we analyzed cross-linked phenolic resins by using atomistic molecular dynamics simulations. Cross-linked structures consisting of a network of three functional phenols and two functional methylenes with degrees of cross-linking of 0.70, 0.82, and 0.92 were prepared by cross-linking reactions of linear novolac-type phenolic resins in a unit cell under three-dimensional periodic boundary conditions. Uniaxial elongations of the cross-linked structures to a strain of 0.03 were performed at 300 K. At this temperature, all structures were apparently in a glassy state, which was confirmed by the analysis of specific volume as a function of the temperature. The uniaxial elongation did not cause a significant change in the distribution of bonding potential energies (i.e., bond stretching, angle bending, and torsion angle potentials). On the other hand, the change in the potential energies owing to the uniaxial elongation indicated that cross-links suppressed local segmental motions in the cross-linked structure, probably at the region around the linear and terminal phenols, which resulted in an increase in the degree of cross-linking accompanied by a decrease in Poisson's ratio and an increase in Young's modulus.

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Citations
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Phenolic resins—100years of progress and their future

TL;DR: Phenolic resins have been under continuous development as an important thermosetting resin material since the first successful trial production of the synthetic resin in Japan in 1911 as discussed by the authors and have been developing synthetic and composite production technologies since that time for adaptation to various applications.
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A robust and reproducible procedure for cross-linking thermoset polymers using molecular simulation.

TL;DR: This work introduces a clear and reproducible cross-linking protocol to reliably generate three dimensional epoxy cross-linked polymer structures for use in molecular simulations, and provides a benchmark for the process of simulating epoxy polymers.
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TL;DR: In this paper, a molecular dynamics simulation that includes multidisciplinary characteristics from synthesis to mechanical properties of epoxy resin is performed to reproduce the actual chemical reaction between matrix and curing agents, wherein the activation energy and heat of formation are considered for the chemical reaction.
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