Applied Physics Letters · 1988 · 129 citations · 5 references
Materials ScienceEpitaxial GrowthEngineeringMisfit Dislocation PropagationPhysicsCrystalline DefectsMisfit DislocationsDislocation InteractionApplied PhysicsQuantum MaterialsCondensed Matter PhysicsMisfit Dislocation NucleationElectron MicroscopeDefect FormationMultilayer HeterostructuresMolecular Beam EpitaxyDefect ToleranceMicrostructure
We describe in situ electron microscrope observations of the motion of misfit dislocations in Ge0.3Si0.7/Si(100) heterostructures. A 350 Å Ge0.3Si0.7/Si(100) structure is grown by molecular beam epitaxy at 550 °C. Although this is below the critical thickness for this composition and growth temperature, we observe misfit dislocation nucleation and propagation as a function of in situ annealing temperature in the electron microscope. This confirms the metastable nature of GeSi strained-layer growth. The misfit dislocation density increases continuously with temperature, passing through an accelerated transition at ∼850 °C. We also report preliminary measurements of misfit dislocation velocity, which establish the identical relationship between threading and misfit dislocations in this system.
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