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January 24, 2026The Journal of Chemical Physics0 citations

An improved united-atom potential for molecular dynamics simulation of saturated properties of n-alkanes

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WTWazih TausifJHJordan HartfieldAGAlex George

Key Points

  • The aim is to develop an improved united-atom potential to accurately simulate saturated properties of n-alkanes.
  • Developed new UA Lennard-Jones interaction parameters for n-alkanes.
  • Conducted molecular dynamics simulations with the improved potential.
  • Compared MD results with experimental saturated properties of n-alkanes.
  • Achieved average absolute deviations of 1.6% for liquid density and 2.3% for vapor density.
  • Improved predictions for properties like saturated vapor pressure, critical temperature, and surface tension.
  • Provided LAMMPS code for simulating liquid-vapor equilibrium of n-dodecane and other n-alkanes.

Abstract

Multiple united-atom (UA) potential models have been developed in the literature to reproduce experimental saturated properties of n-alkanes using Monte Carlo simulations. When these UA potentials are employed in molecular dynamics (MD) simulations, MD simulations often give relatively poor predictions of saturated properties of n-alkanes, particularly the saturated vapor densities, due to the challenges in accurate calculation of long-range intermolecular forces beyond the cutoff distance in an inhomogeneous system. In this work, a new set of UA Lennard-Jones (LJ) interaction parameters for n-alkanes is proposed to reproduce the saturated properties, including saturated liquid and vapor densities (ρf and ρg); saturated vapor pressure (Psat); critical temperature, density, and pressure (Tcr, ρcr, and Pcr); surface tension (γ); latent heat of vaporization (hfg); and saturated liquid viscosity (η) of n-alkanes (C4–C22) using MD simulations with truncated LJ interactions. Compared to the experimental data of n-alkanes properties, the average absolute deviation of the MD simulation results obtained using the improved UA (I-UA) potential developed in this work are 1.6%, 2.3%, 2.8%, 0.3%, 2.7%, 4.3%, 4.4%, 2.1%, and 14.3% for ρf, ρg, Psat, Tcr, ρcr, Pcr, γ, hfg, and η, respectively. The Large-scale Atomic/Molecular Massively Parallel Simulator (LAMMPS) code for MD simulation of liquid–vapor equilibrium of n-dodecane using the I-UA potential is provided in this paper. The LAMMPS code can be easily modified to determine saturated properties of other n-alkanes.

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Cite This Study

Tausif et al. (2026) studied this question.

synapsesocial.com/papers/69746126bb9d90c67120b13dhttps://doi.org/10.1063/5.0306295
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