1987•Journal of Vacuum Science & Technology B Microelectronics Processing and PhenomenaRequires access

Wavelength dependence of optically induced oxidation of GaAs(100)

C. F. Yu, Michael T. Schmidt, D. V. Podlesnik, Richard M. Osgood

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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.

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Available 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.

Key concepts: Ultraviolet, Wavelength, Materials science, X-ray photoelectron spectroscopy, Laser, Optoelectronics, Semiconductor, Ultraviolet photoelectron spectroscopy

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