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Misfit-energy-increasing dislocations in vapor-deposited CoFe/NiFe multilayers

Physical Review B · 2004 · Vol. 69(14)
Xiaowang ZhouR. A. JohnsonH.N.G. Wadley

Abstract

Recent molecular dynamics simulations of the growth of $[{\mathrm{Ni}}_{0.8}{\mathrm{Fe}}_{0.2}/\mathrm{Au}]$ multilayers have revealed the formation of misfit-strain-reducing dislocation structures very similar to those observed experimentally. Here we report similar simulations showing the formation of edge dislocations near the interfaces of vapor-deposited (111) [NiFe/CoFe/Cu] multilayers. Unlike misfit dislocations that accommodate lattice mismatch, the dislocation structures observed here increase the mismatch strain energy. Stop-action observations of the dynamically evolving atomic structures indicate that during deposition on the (111) surface of a fcc lattice, adatoms may occupy either fcc sites or hcp sites. This results in the random formation of fcc and hcp domains, with dislocations at the domain boundaries. These dislocations enable atoms to undergo a shift from fcc to hcp sites, or vice versa. These shifts lead to missing atoms, and therefore a later deposited layer can have missing planes compared to a previously deposited layer. This dislocation formation mechanism can create tensile stress in fcc films. The probability that such dislocations are formed was found to quickly diminish under energetic deposition conditions.

nanoparticles nucleation surface interactionsMetal and Thin Film MechanicsMicrostructure and mechanical propertiesMaterials scienceDislocationCondensed matter physicsStrain energyPartial dislocationsLattice (music)Chemical vapor depositionCrystallographyNanotechnologyComposite material

Funding

  • Defense Advanced Research Projects Agency
Citations
1,421
FWCI
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References
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Physical review. B, Condensed matter · 1986 · 4,531 citations
Defects in epitaxial multilayers I. Misfit dislocations
Journal of Crystal Growth · 1974 · 3,086 citations
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