DocumentCode :
1366442
Title :
Experimental and theoretical analysis of the resonant nonlinearity in ytterbium-doped fiber
Author :
Arkwright, John W. ; Elango, P. ; Atkins, Graham R. ; Whitbread, T. ; Digonnet, Michel J F
Author_Institution :
Siemens (Victoria) Ltd., Australia
Volume :
16
Issue :
5
fYear :
1998
fDate :
5/1/1998 12:00:00 AM
Firstpage :
798
Lastpage :
806
Abstract :
Experimental measurements are described characterizing the nonlinear index change over the range from 500 to 1550 nm induced in an ytterbium (Yb3+)-doped twin-core fiber by a 980 nm pump. At 1550 nm, a phase change of π is induced with as little as 14 mW of pump power for a signal loss of only 0.2 dB, By allowing the doped fiber to lase and observing the associated clamping of the induced phase change, we show that a digital nonlinear response can be achieved in which a constant, pump-power-insensitive, phase change is induced for all pump powers above a certain threshold. This lasing induced clamping of the phase change also demonstrates that the nonlinear effect is population dependent as opposed to thermal. The pump-induced phase change is observed to increase for shorter signal wavelengths, which suggests that the effect is due principally to pump-induced changes in the strong ultraviolet (UV) absorptions of Yb3+. This observation is accurately predicted by a theoretical analysis that takes into account absorptions in both infrared and ultraviolet regions. This analysis shows that Yb3+ may be suitable for low-power all-optical switching applications in both 1300 and 1550 nm telecommunications windows when the speed of response is not a critical parameter
Keywords :
nonlinear optics; optical fibre communication; optical fibre theory; optical pumping; optical switches; refractive index; ytterbium compounds; 0.2 dB; 1300 nm; 14 mW; 1550 nm; 500 to 1550 nm; IR telecommunications windows; Yb3+)-doped twin-core fiber; all pump powers; certain threshold; constant pump-power-insensitive phase change; digital nonlinear response; induced phase change; low-power all-optical switching applications; nonlinear index change; phase change; population dependent; pump power; pump-induced phase change; resonant nonlinearity; signal loss; signal wavelengths; strong UV absorptions; theoretical analysis; ytterbium-doped fiber; Australia; Clamps; Electromagnetic wave absorption; Erbium-doped fiber lasers; Industrial training; Optical fibers; Resonance; Switches; Telecommunication switching; Ytterbium;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/50.669007
Filename :
669007
Link To Document :
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