Modified charge transfer–embedded atom method potential for metal/metal oxide systems

2004 ◽  
Vol 69 (3) ◽  
Author(s):  
X. W. Zhou ◽  
H. N. G. Wadley ◽  
J.-S. Filhol ◽  
M. N. Neurock
2006 ◽  
Vol 978 ◽  
Author(s):  
Ivan Lazic ◽  
Barend Thijsse

AbstractNew methods for modeling oxide film growth using MD (molecular dynamics) simulations are explored in order to study the atomic mechanism of the self-healing oxidation phenomenon in metal/oxide systems. A modified MEAM (modified embedded atom method) potential is proposed and extended by a variable charge ionic potential model from the literature, for which the PPPM (particle-particle-particle-mesh) was used as Coulomb solver. In this work the first results are reported. The ionic potential model is tested in combination with the PPPM solver. The results are excellent.


1990 ◽  
Vol 5 (9) ◽  
pp. 1995-2003 ◽  
Author(s):  
Y. Gao ◽  
Karl L. Merkle

The atomic structures of heterophase interfaces with large misfits (>14% in Ag/Ni and Au/Ni) and with small misfits (∼2% in Ag/NiO and Au/NiO) have been studied by high-resolution electron microscopy (HREM). It is found that all interfaces are strongly faceted on (111) planes. This indicates that (111) interfaces have the lowest interfacial energy in both metal/metal and metal/metal-oxide systems. For the metal interfaces, this also agrees with determinations of interfacial energies by lattice statics calculations. The large misfit of Ag/Ni and Au/Ni interfaces is accommodated by misfit dislocations. Observations of misfit localization by HREM are in good agreement with images derived from computer simulation, based on relaxed structures, obtained in embedded atom calculations. All misfit dislocations at the Ag/Ni and Au/Ni interfaces lie exactly in the plane of the interfaces, while the dislocations at Ag/NiO and Au/NiO interfaces reside at a stand-off distance, 3 to 4 (111)Ag or (111)Au interplanar spacings from the interfaces.


2003 ◽  
Vol 547 (1-2) ◽  
pp. L859-L864 ◽  
Author(s):  
R Lindsay ◽  
E Michelangeli ◽  
B.G Daniels ◽  
M Polcik ◽  
A Verdini ◽  
...  

2008 ◽  
Vol 23 (3) ◽  
pp. 704-718 ◽  
Author(s):  
X.W. Zhou ◽  
J.A. Zimmerman ◽  
B.M. Wong ◽  
J.J. Hoyt

Palladium hydrides have important applications. However, the complex Pd–H alloy system presents a formidable challenge to developing accurate computational models. In particular, the separation of a Pd–H system to dilute (α) and concentrated (β) phases is a central phenomenon, but the capability of interatomic potentials to display this phase miscibility gap has been lacking. We have extended an existing palladium embedded-atom method potential to construct a new Pd–H embedded-atom method potential by normalizing the elemental embedding energy and electron density functions. The developed Pd–H potential reasonably well predicts the lattice constants, cohesive energies, and elastic constants for palladium, hydrogen, and PdHx phases with a variety of compositions. It ensures the correct hydrogen interstitial sites within the hydrides and predicts the phase miscibility gap. Preliminary molecular dynamics simulations using this potential show the correct phase stability, hydrogen diffusion mechanism, and mechanical response of the Pd–H system.


2012 ◽  
Vol 85 (24) ◽  
Author(s):  
B. Jelinek ◽  
S. Groh ◽  
M. F. Horstemeyer ◽  
J. Houze ◽  
S. G. Kim ◽  
...  

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