Journal of Applied Physics · 1996 · 23 citations · 22 references
Improved Metal–insulator–semiconductor DevicesEngineeringThin Film Process TechnologyChemical DepositionCadmium SulfideSemiconductorsIi-vi SemiconductorElectronic DevicesThin Cds LayersCompound SemiconductorCadmium SulfateMaterials ScienceElectrical EngineeringOxide SemiconductorsSemiconductor MaterialSurface ScienceApplied PhysicsDeposited InsulatorThin FilmsChemical Vapor Deposition
Cadmium sulfide (CdS) layers were deposited from an aqueous solution of thiourea, cadmium sulfate, and ammonia on (100) n-InP at 60–95 °C. X-ray photoelectron spectroscopy showed that the deposition process effectively removes native oxides on InP and forms a protective layer for subsequent dielectric deposition. Surface analysis also showed that the InP surface is not P deficient following oxide deposition on CdS-treated InP. Capacitance–voltage and conductance–voltage measurements of metal–insulator–semiconductor (MIS) capacitors were used to compare samples with and without CdS films between InP and a deposited insulator. Capacitance–voltage response of CdS-treated MIS structures showed well-defined regions of accumulation, depletion, and inversion. The interface-state density at midgap was reduced from 5×1011 to 6×1010 eV−1 cm−2 with CdS treatment. Depletion-mode MIS field-effect transistors made using this new passivation technique exhibited superior device performance to that of untreated samples.
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Handbook of X-Ray Photoelectron Spectroscopy
J. F. Moulder · Medical Entomology and Zoology · 1995 · 23.7K citations
FUNDAMENTAL TRANSITION IN THE ELECTRONIC NATURE OF SOLIDS
Stephen Kurtin, T. C. McGill, Carver Mead · Physical Review Letters · 1969 · 602 citations