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Journal ArticleDOI

Empirical potential for hydrocarbons for use in simulating the chemical vapor deposition of diamond films

Donald W. Brenner
- 15 Nov 1990 - 
- Vol. 42, Iss: 15, pp 9458-9471
TLDR
An empirical many-body potential-energy expression is developed for hydrocarbons that can model intramolecular chemical bonding in a variety of small hydrocarbon molecules as well as graphite and diamond lattices based on Tersoff's covalent-bonding formalism with additional terms that correct for an inherent overbinding of radicals.
Abstract
An empirical many-body potential-energy expression is developed for hydrocarbons that can model intramolecular chemical bonding in a variety of small hydrocarbon molecules as well as graphite and diamond lattices. The potential function is based on Tersoff's covalent-bonding formalism with additional terms that correct for an inherent overbinding of radicals and that include nonlocal effects. Atomization energies for a wide range of hydrocarbon molecules predicted by the potential compare well to experimental values. The potential correctly predicts that the \ensuremath{\pi}-bonded chain reconstruction is the most stable reconstruction on the diamond {111} surface, and that hydrogen adsorption on a bulk-terminated surface is more stable than the reconstruction. Predicted energetics for the dimer reconstructed diamond {100} surface as well as hydrogen abstraction and chemisorption of small molecules on the diamond {111} surface are also given. The potential function is short ranged and quickly evaluated so it should be very useful for large-scale molecular-dynamics simulations of reacting hydrocarbon molecules.

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Journal ArticleDOI

Molecular dynamics simulations of the sticking and etch behavior of various growth species of (ultra)nanocrystalline diamond films

TL;DR: In this paper, the reaction behavior of species that may affect the growth of ultrananocrystalline (U) diamond films is investigated by means of molecular dynamics simulations by using simulations on clean and hydrogenated diamond (100)2T 1 and (111)1T 1 surfaces at different substrate temperatures.
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ReaxFF Reactive Force-Field Modeling of the Triple-Phase Boundary in a Solid Oxide Fuel Cell

TL;DR: Simulation results indicate that the developed ReaxFF potential properly describes complex physicochemical processes, such as the oxide-ion diffusion, fuel conversion, water formation reaction, coking, and delamination, occurring at the TPB and can be recommended for further computational studies of the fuel/Electrode/electrolyte interfaces in a SOFC.
Journal ArticleDOI

A higher-order gradient theory for modeling of the vibration behavior of single-wall carbon nanocones

TL;DR: In this article, a higher-order gradient theory is used to investigate the free vibration characteristics of single-wall carbon nanocones (SWCNCs) under a developed mesh-free computational framework based on moving Kriging interpolation.
Journal ArticleDOI

Friction between solids

TL;DR: The theoretical examination of the friction between solids is discussed with a focus on self-assembled monolayers, carbon-containing materials and antiwear additives, and most of the work discussed herein makes use of classical molecular dynamics simulations.
Journal ArticleDOI

Torsional responses of double-walled carbon nanotubes via molecular dynamics simulations

TL;DR: In this article, the buckling behavior of double-walled carbon nanotubes (DWCNTs) under torsion was investigated by using molecular dynamics simulations, and the effect of length on the torsional buckling behaviors was examined for the first time.