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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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Roughness of undoped graphene and its short-range induced gauge field

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Molecular dynamics simulation study of molecular ejection mechanisms: keV particle bombardment of C6H6/Ag{111}

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Friction between Diamond Surfaces in the Presence of Small Third-Body Molecules

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Size effects on the fracture of microscale and nanoscale materials

TL;DR: In this paper, experimental and computational studies of size effects on the fracture in micro and nanoscale materials, point out the advantages and limitations of existing theories and, finally, provide a pedagogical guide to the analysis of fracture data from micro- and nano-scale samples.
Journal ArticleDOI

Mechanical properties of defective γ-graphyne using molecular dynamics simulations

TL;DR: In this article, the authors explored the mechanical properties of perfect and defective γ-graphyne, a lattice of sp-sp2-hybridized carbon atoms as a graphene allotrope using the classical molecular dynamics simulations.