Title :
Simultaneous fiber-optic transport and RF phase control of narrow-band millimeter-wave signals using multicontact monolithic semiconductor lasers
Author :
Georges, Johm B. ; Lux, Robert A. ; Yeung, Simon P. ; Lau, Kam Y. ; Chang, Wayne
Author_Institution :
LGC Technol., Berkeley, CA, USA
fDate :
7/1/1996 12:00:00 AM
Abstract :
We demonstrate fiber-optic transport over 2.2 km of single-mode fiber with continuous RF phase control of narrow-band millimeter-wave signals using a three-section monolithic distributed Bragg reflector (DBR) laser. By injection-locking the laser at the cavity round-trip resonant frequency of 45 GHz, we achieve 360/spl deg/ of continuous, linear RF phase control of the input mm-wave signal by simply varying the bias current into the laser. The RF phase shift of the 45 GHz tone versus bias current into the phase section of the laser is characterized in detail. Carrier-to-noise and locking bandwidth measurements are performed. Dynamic RF phase control of the mm-wave optical transmitter is also demonstrated by modulating the bias current into the phase section of the device, resulting in an RF phase modulated 45 GHz subcarrier with good AM suppression.
Keywords :
amplitude modulation; distributed Bragg reflector lasers; laser cavity resonators; laser noise; optical fibre communication; optical modulation; optical transmitters; phase control; phase modulation; semiconductor lasers; 2.2 km; 46 GHz; DBR laser; RF phase control; RF phase modulated; bias current; carrier-to-noise; cavity round-trip resonant frequency; continuous RF phase control; dynamic RF phase control; fiber-optic transport; good AM suppression; injection-locking; input mm-wave signal; linear RF phase control; locking bandwidth; mm-wave optical transmitter; multicontact monolithic semiconductor lasers; narrow-band millimeter-wave signals; phase section; single-mode fiber; three-section monolithic distributed Bragg reflector laser; Bandwidth; Distributed Bragg reflectors; Fiber lasers; Narrowband; Phase control; Phase modulation; RF signals; Radio frequency; Resonant frequency; Semiconductor lasers;
Journal_Title :
Photonics Technology Letters, IEEE