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
fDate :
12/1/1995 12:00:00 AM
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;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/2944.488684