Japanese Journal of Applied Physics · 2000 · 16 citations · 13 references
SemiconductorsWide-bandgap SemiconductorElectrical EngineeringEngineeringPhysicsCrystalline DefectsSurface ScienceApplied PhysicsAluminum Gallium NitrideGan Power DeviceElectron Cyclotron ResonancePlasma EmissionNitrogen Molecular IonsCategoryiii-v SemiconductorEv EmissionOptoelectronicsDamage Due
We have observed that the intensity of plasma emission at 391 nm from nitrogen molecular ions in nitrogen plasma is closely related to the crystalline quality and the surface morphology of GaN heteroepitaxial layers grown on Si(001). When plasma emission intensity is increased, the surface morphology is degraded, the photoluminescence (PL) intensities of two donor bound exciton (D 0 X) emissions from mixed crystal grains of wurtzite -GaN (α-GaN) and zincblende -GaN (β-GaN) and of yellow emissions are abruptly decreased, and the full-width at half maximum of the D 0 X is broadened. These reflect the influences of damage due to nitrogen molecular ions. The damage generates nonradiative centers. A small number of (001)- and (111)-oriented β-GaN crystal grains exist in the layers, together with a large number of (0001)-oriented GaN. PL efficiency from β-GaN is markedly higher than that from α-GaN, probably because the majority of the carriers accumulate in the β-GaN side at the interface between α- and β-GaN. The broad PL emissions at 3.10 and 3.29 eV with weak intensities are not changed by the damage. The peak energy position of the 3.29 eV emission almost coincides with that of D 0 X(β-GaN). The damage is not easily eliminated even by high-temperature growth at 900°C.
13
Molecular beam epitaxy growth and properties of GaN films on GaN/SiC substrates
W. C. Hughes, W. H. Rowland, Mark A. Johnson et al. · Journal of Vacuum Science & Technology B Microelectronics and Nanometer Structures Processing Measurement and Phenomena · 1995 · 188 citations
Materials Science, Gan Film Quality, Electrical Engineering +13
Hsiang‐Lin Liu, A. C. Frenkel, J. G. Kim et al. · Journal of Applied Physics · 1993 · 91 citations
Materials Science, Materials Engineering, Electrical Engineering +15