Title :
Comparison between finite-difference time-domain calculation with all parameters of Sellmeier´s fitting equation and experimental results for slightly chirped 12-fs laser pulse propagation in a silica fiber
Author :
Nakamura, Shinki ; Takasawa, Naoya ; Koyamada, Yahei
Author_Institution :
Dept. of Media & Telecommun. Eng., Ibaraki Univ., Hitachi, Japan
Abstract :
Conventionally, the beam-propagation method for solving the generalized nonlinear Schrödinger equation, including the slowly varying envelope approximation, has been used to describe the ultrashort-laser-pulse propagation in an optical fiber. However, if the pulse duration approaches the optical cycle regime (<10 fs), this approximation becomes invalid. Then, it becomes necessary to use the finite-difference time-domain (FDTD) method for solving the Maxwell equation with the least approximation. In order to both experimentally and numerically investigate nonlinear femtosecond ultra-broad-band-pulse propagation in a silica fiber, the FDTD calculation of Maxwell´s equations has been extended with nonlinear terms to that including all exact Sellmeier-fitting values. The results of this extended FDTD method are compared with experimental results for the nonlinear propagation of a very short (12-fs) chirped laser pulse in a silica fiber. The fiber output pulse compressed to 7 fs by the simulation of group-delay compensation was obtained under the assumption of using a spatial light modulator. To the authors´ knowledge, this is the first comparison between FDTD calculation and experimental results for nonlinear propagation of a very short (12-fs) chirped pulse in a silica fiber.
Keywords :
Maxwell equations; chirp modulation; finite difference time-domain analysis; high-speed optical techniques; optical fibres; optical pulse compression; spatial light modulators; 12 fs; 7 fs; Maxwell equation; Sellmeier fitting equation; finite-difference time-domain calculation; group-delay compensation; least approximation; pulse compression; silica fiber; slightly chirped laser pulse propagation; spatial light modulator; Chirp; Fiber lasers; Finite difference methods; Maxwell equations; Nonlinear equations; Optical fibers; Optical propagation; Optical pulses; Silicon compounds; Time domain analysis; Femtosecond; Raman; Sellmeier; finite-difference time domain (FDTD); generalized nonlinear SchrÖdinger equation (GNLSE); monocycle optical pulse; nonlinear chirp; nonlinear fiber optics; nonlinear propagation; self-phase modulation; self-steepening; silica fiber; slowly varying envelope approximation (SVEA); spatial light modulator (SLM); spatial phase modulator (SPM); ultra-broad-band spectrum;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2004.838873