Title :
Numerical model of the dynamic absorption variation in QW-EAM for ultrafast all-optical signal processing
Author :
Ghelfi, P. ; Bogoni, A. ; Poti, L.
Author_Institution :
Laboratorio Nazionale di Reti Fotoniche, CNIT, Pisa, Italy
Abstract :
Noise reduction techniques, such as all-optical 3R regeneration, can be realised using ultrafast saturable absorbers, both for the clock recovery block and for the reshaping block. Electroabsorption modulators (EAM) can be used as saturable absorbers when they are traversed by a strong pump optical pulse, which can reduce the absorption experienced by a second probe signal that propagates along the device together with the pump: this feature is called cross-absorption modulation (XAM). The authors present a novel numerical model to evaluate the dynamic behaviour of a quantum well EAM absorption, that can be applied in all-optical signal processing schemes for ultrafast transmission systems. The effects of both electric field screening and exciton saturation are taken into account. Numerical results agree with the experimental device behaviour reported in the literature.
Keywords :
electric fields; electroabsorption; excitons; light absorption; optical communication equipment; optical information processing; optical modulation; quantum well devices; semiconductor device models; semiconductor quantum wells; QW-EAM; XAM; absorption reduction; all-optical 3R regeneration; clock recovery block; cross-absorption modulation; dynamic absorption variation; electric field screening; electroabsorption modulators; exciton saturation; noise reduction techniques; numerical model; quantum well EAM absorption; reshaping block; second probe signal; strong pump optical pulse; ultrafast all-optical signal processing; ultrafast saturable absorbers;
Journal_Title :
Circuits, Devices and Systems, IEE Proceedings -
DOI :
10.1049/ip-cds:20030999