DocumentCode
777229
Title
Near-field optical studies of semiconductor heterostructures and laser diodes
Author
Goldberg, B.B. ; Unlu, M.S. ; Herzog, W.D. ; Ghaemi, H.F. ; Towe, E.
Author_Institution
Center for Photonics Res., Boston Univ., MA, USA
Volume
1
Issue
4
fYear
1995
fDate
12/1/1995 12:00:00 AM
Firstpage
1073
Lastpage
1081
Abstract
Near-field optical microscopy and spectroscopy is emerging as a powerful tool for the investigation of semiconductor structures. Tunable excitation combined with sub-wavelength resolution is providing an unprecedented level of detail on the local optical properties of semiconductor structures. Recent near-field optical studies have addressed issues of laser diode mode profiling, minority carrier transport, near-field photocurrent response of quantum-well structures and laser diodes, imaging of local waveguide properties, and location and studies of dislocations in semiconductor thin films. We present results on the intrinsic resolution limitations of near-field photoconductivity in quantum-well heterostructures and demonstrate that the resolution depends strongly on the amount of evanescent and propagating field components in the semiconductor. Spectroscopic mode-profiling of high-power laser diode emission details the spatial dependence of multiple spectral modes. This paper presents an overview of NSOM techniques for semiconductor systems, its limitations, and present status
Keywords
laser modes; optical microscopy; photoconductivity; semiconductor lasers; semiconductor quantum wells; InGaAs; dislocations; evanescent field components; high-power laser diode emission; imaging; intrinsic resolution limitations; laser diode mode profiling; local optical properties; local waveguide properties; minority carrier transport; multiple spectral modes; near-field optical microscopy; near-field photoconductivity; near-field photocurrent response; propagating field components; quantum-well structures; resolution; semiconductor heterostructures; semiconductor structures; semiconductor thin films; spatial dependence; spectroscopic mode-profiling; sub-wavelength resolution; tunable excitation; Diode lasers; Optical films; Optical microscopy; Optical surface waves; Optical waveguides; Photoconductivity; Quantum well lasers; Spatial resolution; Spectroscopy; Tunable circuits and devices;
fLanguage
English
Journal_Title
Selected Topics in Quantum Electronics, IEEE Journal of
Publisher
ieee
ISSN
1077-260X
Type
jour
DOI
10.1109/2944.488684
Filename
488684
Link To Document