Title :
A synthesized method to improve coherence in semiconductor lasers by electrical feedback
Author :
Kuboki, K. ; Ohtsu, Motoichi
Author_Institution :
Graduate Sch. of Nagatsuta, Tokyo Inst. of Technol., Kanagawa, Japan
fDate :
10/1/1989 12:00:00 AM
Abstract :
A method for improving coherence in semiconductor lasers by negative electrical feedback is proposed for stabilization of the center frequency of the field spectrum, linewidth reduction of the field spectrum, frequency tracking to another highly coherent laser, and stable and wideband frequency sweep. Experimental center frequency stabilization of the master laser showed that the magnitude of frequency fluctuations was reduced to 50 kHz at the integration time τ=3 s. The linewidth of the master laser was reduced to 100 kHz, which was 1/50 that of the free running laser. Under these frequency control conditions, the frequency of the slave laser was controlled so that the phase of the heterodyne signal between the master and the slave lasers could be locked to that of a stable microwave synthesizer. The slave laser frequency tracked accurately to the master laser frequency
Keywords :
feedback; frequency control; laser frequency stability; light coherence; semiconductor junction lasers; spectral line breadth; 3 s; centre field frequency stabilisation; coherence improvement method; electrical feedback; field spectrum; free running laser; frequency control conditions; frequency fluctuations; frequency tracking; heterodyne signal; heterodyne signal phase; highly coherent laser; integration time; master laser; master laser frequency; master laser linewidth; negative electrical feedback; phase locking; semiconductor laser coherence; semiconductor lasers; slave laser; slave laser frequency; spectral linewidth reduction; stable frequency sweep; stable microwave synthesizer; wideband frequency sweep; Fluctuations; Frequency control; Frequency synthesizers; Laser feedback; Laser stability; Masers; Master-slave; Negative feedback; Semiconductor lasers; Wideband;
Journal_Title :
Quantum Electronics, IEEE Journal of