Japanese Journal of Applied Physics · 1998 · 35 citations · 33 references
Aluminium NitrideWide-bandgap SemiconductorEngineeringGan/al 2SemiconductorsMisfit DislocationsQuantum MaterialsMaterials ScienceCrystalline DefectsPhysicsAluminum Gallium NitrideCategoryiii-v SemiconductorAl 2Dislocation InteractionSurface ScienceApplied PhysicsCondensed Matter PhysicsGan Power DeviceThin FilmsObserved Relaxation Process
A quantitative transmission electron microscopy (TEM) investigation of the relaxation of GaN grown on Al 2 O 3 (0001) has been carried out. Terminating {112̄0}-substrate fringes observed at the interface of the highly mismatched system have been characterized and the efficiency of the relaxation was measured. Wurtzite type GaN was grown by plasma induced molecular beam epitaxy (MBE) on the (0001) basal plane of Al 2 O 3 . The in-plane orientation between GaN and substrate reveals a high lattice misfit of f =-13.9% and therefore the critical thickness of dislocation formation is reached when the first monolayer of GaN is grown. An expected interfacial relaxation process is characterized by the results of high resolution transmission electron microscopy (HRTEM) which reveals misfit dislocations confined in the GaN/Al 2 O 3 interface region. The quantitative evaluation of the HRTEM images on the one hand and Moiré pattern on the other hand shows the effectiveness of the observed relaxation process: here a degree of relaxation δ=(-11.8±0.9)% and a residual strain of ε r =(-2.1±0.9)% was measured, and it seems that only ε r causes a dislocation density of estimately 10 10 cm -2 in the GaN epilayer.
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InGaN-Based Multi-Quantum-Well-Structure Laser Diodes
Shuji Nakamura, Masayuki Senoh, Shin‐ichi Nagahama et al. · Japanese Journal of Applied Physics · 1996 · 2.5K citations