Journal of Applied Physics · 2003 · 2.7K citations · 359 references
SemiconductorsWide-bandgap SemiconductorElectrical EngineeringEngineeringPhysicsCritical ReviewApplied PhysicsCondensed Matter PhysicsAluminum Gallium NitrideBand ParametersSemiconductor MaterialFundamental Band GapCategoryiii-v SemiconductorCompound Semiconductor
We present a comprehensive and up-to-date compilation of band parameters for all of the nitrogen-containing III–V semiconductors that have been investigated to date. The two main classes are: (1) “conventional” nitrides (wurtzite and zinc-blende GaN, InN, and AlN, along with their alloys) and (2) “dilute” nitrides (zinc-blende ternaries and quaternaries in which a relatively small fraction of N is added to a host III–V material, e.g., GaAsN and GaInAsN). As in our more general review of III–V semiconductor band parameters [I. Vurgaftman et al., J. Appl. Phys. 89, 5815 (2001)], complete and consistent parameter sets are recommended on the basis of a thorough and critical review of the existing literature. We tabulate the direct and indirect energy gaps, spin-orbit and crystal-field splittings, alloy bowing parameters, electron and hole effective masses, deformation potentials, elastic constants, piezoelectric and spontaneous polarization coefficients, as well as heterostructure band offsets. Temperature and alloy-composition dependences are also recommended wherever they are available. The “band anticrossing” model is employed to parameterize the fundamental band gap and conduction band properties of the dilute nitride materials.
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Band Anticrossing in GaInNAs Alloys
W. Shan, W. Walukiewicz, Joel W. Ager et al. · Physical Review Letters · 1999 · 1.6K citations
Materials Science, Materials Engineering, Conduction Band +15
Unusual properties of the fundamental band gap of InN
Junqiao Wu, W. Walukiewicz, K. M. Yu et al. · Applied Physics Letters · 2002 · 1.5K citations · Full text
Materials Science, Ii-vi Semiconductor, Wurtzite-structured Inn Grown +15