Title :
Optical signal processing using nonlinear distributed feedback structures
Author :
Brzozowski, Lukasz ; Sargent, Edward H.
Author_Institution :
Dept. of Electr. & Comput. Eng., Toronto Univ., Ont., Canada
fDate :
5/1/2000 12:00:00 AM
Abstract :
We analyze the optical signal processing functionality of periodic structures consisting of alternating layers of materials possessing opposite Kerr nonlinearities. By elaborating an analytical model and employing numerical simulations, we explore the performance of proposed passive optical limiters and switches. We prove that the proposed limiters provide true limiting by clamping the transmitted intensity at a level which is independent of the incident intensity. We explore the response of optical switches for signal and pump beams having the same and different frequencies. We describe and quantify the performance of the proposed structures in the realization of all-optical OR gates and optical hard-limiters. In addition, we prove that, for fabrication errors as large as 10%, qualitative device functionality remains, with performance only modestly degraded.
Keywords :
coupled mode analysis; errors; logic gates; numerical analysis; optical Kerr effect; optical fabrication; optical feedback; optical information processing; optical limiters; optical logic; optical switches; optical testing; periodic structures; Kerr nonlinearities; all-optical OR gates; alternating layers; analytical model; clamping; degraded performance; fabrication errors; incident intensity; nonlinear distributed feedback structures; numerical simulations; opposite Kerr nonlinearities; optical hard-limiters; optical signal processing; optical signal processing functionality; optical switches; passive optical limiters; passive optical switches; performance; periodic structures; pump beams; qualitative device functionality; signal beams; transmitted intensity; Analytical models; Distributed feedback devices; Nonlinear optics; Optical feedback; Optical materials; Optical pumping; Optical signal processing; Optical switches; Periodic structures; Signal analysis;
Journal_Title :
Quantum Electronics, IEEE Journal of