DocumentCode
1173641
Title
Self-mixing interference inside a single-mode diode laser for optical sensing applications
Author
Wang, W.M. ; Grattan, K.T.V. ; Palmer, A.W. ; Boyle, W.J.O.
Author_Institution
Dept. of Electr. Electron. & Inf. Eng., City Univ., London, UK
Volume
12
Issue
9
fYear
1994
fDate
9/1/1994 12:00:00 AM
Firstpage
1577
Lastpage
1587
Abstract
This paper presents a theoretical analysis and a comparison with experimental results on self-mixing interference inside a single-longitudinal-mode diode laser. A theoretical model, based on the steady-state equations of the lasing condition in a Fabry-Perot type laser cavity, is described, and through it a satisfactory analysis of self-mixing interference for optical sensing applications is given. In this work, the self-mixing interference produced by an external optical feedback is found to be due to the variations in the threshold gain and in the spectral distribution of the laser output. The gain variation results in an optical intensity modulation, and the spectral variation determines both the modulation waveform and the coherence properties of the interference. The theoretical analysis of the self-mixing interference is seen to yield a simulation of the laser power modulation which is in good agreement with the experiment results reported
Keywords
laser cavity resonators; laser modes; light interference; optical modulation; optical sensors; semiconductor lasers; Fabry-Perot type laser cavity; coherence properties; external optical feedback; gain variation; laser output; laser power modulation; lasing condition; modulation waveform; optical intensity modulation; optical sensing applications; self-mixing interference; simulation; single-longitudinal-mode diode laser; single-mode diode laser; spectral distribution; steady-state equations; theoretical analysis; theoretical model; threshold gain; Diode lasers; Distributed feedback devices; Equations; Intensity modulation; Interference; Laser feedback; Laser theory; Optical feedback; Optical sensors; Steady-state;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/50.320940
Filename
320940
Link To Document