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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
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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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Thermal conductivity of graphene nanoribbons with defects and nitrogen doping

TL;DR: In this paper, the thermal conductivity of defective graphene nanoribbons doped with nitrogen for different distributions around the defect edge at nanoscale is investigated using the reverse non-equilibrium molecular dynamics (RNEMD) method, which explores ways to improve thermal management.
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Molecular Dynamics Simulations of Carbon-Supported Ni Clusters Using the Reax Reactive Force Field

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Scalable molecular-dynamics, visualization, and data management algorithms for materials simulations

TL;DR: Dynamic fracture of materials with realistic microstructures can now be modeled atom-by-atom, in large scale molecular dynamics simulations involving millions of atoms.
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Benchmarking the Performance of the ReaxFF Reactive Force Field on Hydrogen Combustion Systems.

TL;DR: This work benchmark the performance of several common parameterizations of the ReaxFF potential against higher-level quantum mechanical (QM) approaches and demonstrates instances where these parameterizations fail both quantitatively and qualitatively to describe reactive events relevant for hydrogen combustion systems.
Journal ArticleDOI

An interatomic potential for reactive ion etching of si by cl ions

TL;DR: In this article, an interatomic potential has been developed to describe the dynamics of Si/Cl systems, with particular relevance to reactive ion etching of Si by energetic Cl ions.