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Open AccessJournal ArticleDOI

Development of PolyParGen Software to Facilitate the Determination of Molecular Dynamics Simulation Parameters for Polymers

TLDR
PolyParGen as discussed by the authors is a semi-automated force field generation tool for macromolecules with repeating structures, which can relatively easily and reliably simulate the molecular dynamics (MD) of complex macromoles.
Abstract
In the case that the parameters to describe the force field, such as bond angles and charges, cannot be added to the library of a molecular dynamics (MD) simulation, self-development of the force field should be considered by performing quantum mechanics calculations and/or utilizing an automatic parameter generation tool. However, these techniques are not suitable for macromolecules with a large number of atoms. Typically, the force field of an oligomer containing three unit structures (a unit at both ends and a repeating unit at the center) is calculated and converted to polymer form (both ends + central part × n). Considering this, we recently developed the program o2p, which is a semi-automated program designed to set up the force field for polymers with repeating structures. However, it is difficult to apply this method to macromolecules with complex repeating structures. Thus, in this project, we developed PolyParGen, a new open-source automatic force field generation program for Gromacs that can relatively easily and reliably simulate the MD of complex macromolecules. The proposed program (1) divides the structure of the polymer into substructures with a number of atoms within the limit of the handling size for the automatic parameter generation tool program; then, (2) acquire the parameters for each divided substructure, and finally, (3) combine the parameters of these substructures to obtain the parameters for the whole polymer. By automating these processes, it is possible to acquire a parameter of a polymer having complicated structures. This program was evaluated by simulating the polymers P3EHT and F-P3EHT in chloroform. In agreement with previous reports, fluorination was found to cause F-P3EHT to adopt an extended structure, thereby indicating the effectiveness of the proposed program.

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Journal ArticleDOI

Evaluation of interface properties of carbon fiber/resin using the full atomistic model considering the electric charge state

TL;DR: In this paper, the authors evaluate the interface strength of carbon fiber reinforced plastic by using molecular simulation, which considers aspects such as chemical structure and chemical properties of the composite material and its interface strength.
Journal ArticleDOI

Tensile test analysis of carbon fiber composite material by molecular dynamics simulation

TL;DR: In this article, the tensile strength at a carbon fiber/epoxy resin interface using molecular dynamics simulations was investigated, and the simulated tension speed and strength were initiated by the authors.
Journal ArticleDOI

Molecular dynamics simulation for the quantitative prediction of experimental tensile strength of a polymer material

TL;DR: In this paper, a quantitative method for predicting the experimental value of the tensile strength of a polymer material by using molecular dynamics (MD) simulation is presented. But the method is limited to the case of polyamide.
Journal ArticleDOI

A Possibility for Quantitative Detection of Mechanically-Induced Invisible Damage by Thermal Property Measurement via Entropy Generation for a Polymer Material

TL;DR: In this paper , the authors quantitatively compared entropy generation from a mechanical and thermal perspective via molecular dynamic simulations and experimental measurements of the polyamide 6 (PA6) material with thermal properties using differential scanning calorimetry (DSC).
Journal ArticleDOI

Molecular Dynamics Simulation for Evaluating Fracture Entropy of a Polymer Material under Various Combined Stress States

TL;DR: In this article, the stress-state dependence of fracture entropy for a polyamide 6 material is investigated through molecular dynamics simulations, and the relationship between material damage, which is correlated with void size, and entropy value is revealed.
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