Molecular dynamics simulation of octacosane for phase diagrams and properties via the united-atom scheme
Author(s) -
L. Dai,
P. P. Rutkevych,
Souvik Chakraborty,
Gang Wu,
Jun Ye,
Yang Hao Lau,
H. Ramanarayan,
David T. Wu
Publication year - 2021
Publication title -
physical chemistry chemical physics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.053
H-Index - 239
eISSN - 1463-9084
pISSN - 1463-9076
DOI - 10.1039/d1cp02720d
Subject(s) - molecular dynamics , atom (system on chip) , phase diagram , phase (matter) , chemical physics , chemistry , statistical physics , physics , computational chemistry , thermodynamics , computer science , organic chemistry , embedded system
We used the united-atom scheme to build three types of crystalline structures for octacosane (C 28 H 58 ) and carried out molecular dynamics simulations to investigate their phase properties. By gradually heating the three polymorphs, we managed to reproduce the sequence of experimentally reported crystalline phases and rotator phases. By studying the system density, molecule morphology, chain tilt angle and cell anisotropy, we hypothesized three mechanisms behind the observed system deformations and phase transformations during the annealing process. Furthermore, our model successfully predicted the melting temperature and heat of fusion. We also reproduced the characteristics of the rotator phases and the liquid phase, validating the transferability of the united-atom scheme among the different condensed phases of octacosane. Our methodology represents an effective and efficient means of numerical study for octacosane and may be used for other members of the n -alkane family.
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