DocumentCode :
783990
Title :
Studies of reflection effects on device characteristics and system performances of 1.5-μm semiconductor DFB lasers
Author :
Twu, Yihjye ; Parayanthal, P. ; Dean, B.A. ; Hartman, R.L.
Author_Institution :
AT&T Bell Lab., Murray Hill, NJ, USA
Volume :
10
Issue :
9
fYear :
1992
fDate :
9/1/1992 12:00:00 AM
Firstpage :
1267
Lastpage :
1271
Abstract :
The effect of the external optical feedback on the 1.5-μm distributed feedback (DFB) laser´s device and system performance, both unpackaged and packaged, is studied, considering reflection magnitudes, polarizations, and phases. The reflection is introduced into the laser´s AR-coated facet and thus resembles the real system condition for both CW and pulsed (modulated) operations. It is demonstrated that all three parameters can affect the device´s CW spectral properties, namely, the emergence of a second mode or mode switching and a clear reflection amplitude dependence on the system performance. When the device is modulated at a subgigabit/second rate, the reflection amplitude is the dominant factor that influences the system performance. Under the assumption that reflection phases do not play a role in inducing a second mode when the reflection level is high and under the worst polarization condition, the percentage of unpackaged lasers failing the CW L-I test under maximum back reflection (-3.55 dB) is low (less than 2%). A similar failure rate was found for the packaged lasers
Keywords :
distributed feedback lasers; failure analysis; feedback; laser modes; light reflection; optical modulation; semiconductor device testing; semiconductor lasers; 1.5 micron; AR-coated facet; CW L-I test; CW spectral properties; device characteristics; external optical feedback; facet output power; failure rate; mode switching; packaged lasers; reflection amplitude; reflection effects; reflection magnitudes; reflection phase; reflection polarization; semiconductor DFB lasers; system performances; unpackaged lasers failing; variable back reflector; Distributed feedback devices; Laser feedback; Laser modes; Optical feedback; Optical polarization; Optical pulses; Optical reflection; Packaging; Pulse modulation; System performance;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/50.156878
Filename :
156878
Link To Document :
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