Title :
Surface modification of III-V compound semiconductors using surface electromagnetic wave etching induced by ultraviolet lasers
Author :
Ezaki, Mizunori ; Kumagai, Hiroshi ; Toyoda, Koichi ; Obara, Minoru
Author_Institution :
Dept. of Electr. Eng., Keio Univ., Yokohama, Japan
fDate :
9/1/1995 12:00:00 AM
Abstract :
The surface modification of semiconductors by laser-induced surface electromagnetic wave (SEW) etching was investigated. With the novel etching method using a holographic exposure system, submicron periodic dot structures were fabricated directly on semiconductor substrates (n-InP, n-GaAs, and InGaAs-InP). Making use of laser polarization dependence in this etching system, a variety of surface modifications could be achieved on the semiconductors. In particular, in the case of using the s-polarization light, periodic submicron dot structures with a geometrical diameter down to 80 nm could be obtained directly using a single-step process without a mask. The InGaAs-InP dot structures were studied optically by means of photoluminescence spectroscopy, and the blue shift of the photoluminescence energy up to 5.36 meV was observed for the smallest dots, which displayed a lateral quantization
Keywords :
III-V semiconductors; etching; gallium arsenide; holographic gratings; indium compounds; laser beam applications; laser beam etching; photoluminescence; semiconductor quantum dots; spectral line shift; GaAs; III-V compound semiconductors; InGaAs-InP; InP; blue shift; etching system; geometrical diameter; holographic exposure system; laser polarization dependence; laser-induced etching; lateral quantization; n-GaAs; n-InP; periodic submicron dot structures; photoluminescence spectroscopy; s-polarization light; semiconductor substrates; single-step process; submicron periodic dot structures; surface electromagnetic wave etching; surface modification; surface modifications; ultraviolet lasers; Electromagnetic scattering; Etching; Holography; III-V semiconductor materials; Optical surface waves; Periodic structures; Photoluminescence; Semiconductor lasers; Surface emitting lasers; Surface waves;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/2944.473668