Title :
Optimal loop length of a nonlinear optical loop mirror in switching solitons
Author :
Man, Wai Sing ; Tam, Hwa Yaw ; Demokan, M. Suleyman
Author_Institution :
Dept. of Electr. Eng., Hong Kong Polytech. Univ., Kowloon, Hong Kong
fDate :
1/1/1998 12:00:00 AM
Abstract :
The optimal loop length of a nonlinear optical loop mirror (NOLM) for switching solitons was investigated numerically for the case where the wavelengths of the control pulse and signal soliton straddle the dispersion zero. In our analysis, the Raman effect is also included because the wavelength difference between the control and signal pulses is within the Raman gainband. It was found that the control pulse not only imposes phase shift on the copropagating signal, but also transfers part of its energy to the signal. Furthermore, the broadening of the control pulse due to the combined effect of self-phase modulation and group velocity dispersion increases the switching power of the control pulse significantly. The broadening of the control pulse also introduces more uniform phase shift to the signal, thus resulting in a higher switching efficiency. Finally, our results show that the pulse distortion is minimal if a loop length equivalent to one soliton period is employed
Keywords :
mirrors; optical communication equipment; optical delay lines; optical fibre dispersion; optical modulation; optical noise; optical solitons; optical switches; optimisation; phase modulation; Raman effect; Raman gainband; control pulse; control pulses; copropagating signal; dispersion zero; group velocity dispersion; higher switching efficiency; loop length equivalent; nonlinear optical loop mirror; optimal loop length; pulse distortion; self-phase modulation; signal pulses; signal soliton; soliton period; switching power; switching solitons; uniform phase shift; wavelength difference; Mirrors; Nonlinear optics; Optical control; Optical distortion; Optical pulses; Optical solitons; Optimal control; Pulse modulation; Signal analysis; Velocity control;
Journal_Title :
Lightwave Technology, Journal of