Wavelength dependence of optically induced oxidation of GaAs(100)
C. F. Yu, Michael T. Schmidt, D. V. Podlesnik, Richard M. Osgood
Abstract
C. F. Yu, Michael T. Schmidt, D. V. Podlesnik, Richard M. Osgood
Abstract
The wavelength dependence of optically induced, room-temperature oxidation of GaAs (100) is reported. The sample illumination was performed with either continuous wave (cw) or pulsed-laser sources radiating at different wavelengths, in the range of 248–514 nm. The thickness of optically induced oxides, ranging from 1 to >50 Å, was measured with x-ray photoelectron spectroscopy. It was found that the oxidation is always much more rapid in deep-ultraviolet than in near-ultraviolet or visible wavelength regions. This effect is attributed to the generation of hot carriers at the semiconductor surface under ultraviolet light.
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The wavelength dependence of optically induced, room-temperature oxidation of GaAs (100) is reported. The sample illumination was performed with either continuous wave (cw) or pulsed-laser sources radiating at different wavelengths, in the range of 248–514 nm. The thickness of optically induced oxides, ranging from 1 to >50 Å, was measured with x-ray photoelectron spectroscopy. It was found that the oxidation is always much more rapid in deep-ultraviolet than in near-ultraviolet or visible wavelength regions. This effect is attributed to the generation of hot carriers at the semiconductor surface under ultraviolet light.
Key concepts: Ultraviolet, Wavelength, Materials science, X-ray photoelectron spectroscopy, Laser, Optoelectronics, Semiconductor, Ultraviolet photoelectron spectroscopy