DocumentCode
2954904
Title
"Kerr nonlinearity characterization using spectral evolution of dispersed femtosecond pulses"
Author
Louradour, F. ; Messager, V. ; Lopez-Lago, E. ; Couderc, V. ; Barthelemy, A.
Author_Institution
Fac. des Sci., IRCOM, Limoges, France
fYear
2000
fDate
10-15 Sept. 2000
Abstract
Summary form only given. Results on third order optical nonlinearity characterization are presented using a recent technique based on nonlinear spectral evolution of femtosecond pulses The method consists in a first step of pulse stretching in a prisms line of variable dispersion; afterwards, pulses propagate across the nonlinear sample under test experiencing /spl chi//sup (3)/ nonlinearity. At the output the pulse spectrum analysis reveals two different types of spectral evolution depending on the relative signs of the prisms line dispersion with respect to that of the nonlinearity: spectral compression or spectral broadening. The amplitude of these spectral changes, when the initial dispersion is continuously varied from negative to positive values, is directly related to the Kerr nonlinear coefficient of the material to be characterized. This technique has been called D-scan, for "dispersive-scan", in reference to the well-known Z-scan technique that operates in a very similar way in the spatial domain. Our method is applicable at all wavelengths. It doesn\´t require complex detection system nor interferometric adjustment. It is a very linear and sensitive technique. Because of the use of femtosecond pulses, it is only sensitive to fast response nonlinearity. D-scan is also able to perform measurement of the imaginary part of the third order nonlinear susceptibility by plotting the overall transmitted energy versus input dispersion.
Keywords
high-speed optical techniques; nonlinear media; nonlinear optical susceptibility; optical Kerr effect; optical dispersion; optical prisms; optical pulse compression; self-phase modulation; /spl chi//sup (3)/ nonlinearity; D-scan; Kerr nonlinear coefficient; Kerr nonlinearity characterization; Z-scan technique; dispersed femtosecond pulses; dispersive-scan; fast response nonlinearity; femtosecond pulse; femtosecond pulses; input dispersion; negative values; nonlinear sample; nonlinear spectral evolution; nonlinearity; positive values; prisms line; prisms line dispersion; pulse spectrum analysis; pulse stretching; spatial domain; spectral broadening; spectral compression; spectral evolution; third order nonlinear susceptibility; third order optical nonlinearity characterization; transmitted energy; Energy measurement; Nonlinear optics; Optical interferometry; Optical propagation; Optical pulses; Optical sensors; Performance evaluation; Pulse compression methods; Testing; Ultrafast optics;
fLanguage
English
Publisher
ieee
Conference_Titel
Lasers and Electro-Optics Europe, 2000. Conference Digest. 2000 Conference on
Conference_Location
Nice
Print_ISBN
0-7803-6319-1
Type
conf
DOI
10.1109/CLEOE.2000.910246
Filename
910246
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