H. Ammann et al., EXPERIMENTAL AND NUMERICAL INVESTIGATION OF SHORT-PULSE PROPAGATION AND AMPLIFICATION AROUND 1.3-MU-M IN A ND3-DOPED FLUORIDE FIBER(+), Optics communications, 113(1-3), 1994, pp. 39-45
We have investigated experimentally and theoretically the propagation
and amplification characteristics of short optical pulses at lambda ap
proximate to 1.3 mu m in a neodymium-doped fluorozirconate fiber: We h
ave found that psec pulses (4 ps) with sub-nJ energies can be propagat
ed and amplified without appreciable temporal and spectral reshaping.
The propagation and amplification of sub-psec pulses (300 fs) of compa
rable energy, however, is significantly affected by the dispersive and
nonlinear properties of the fiber. The interplay between dispersion a
nd nonlinear effects leads to a power dependent pulse broadening which
is more pronounced when the pulses are amplified. The experimental re
sults are in good agreement with numerical simulations based on an ext
ended version of the nonlinear Schrodinger equation. The comparison be
tween experimental and numerical results allows to identify the pulse
shaping mechanisms involved which is important in order to assess the
potential of Nd3+-doped fluoride fibers as mode-locked fiber lasers an
d amplifiers.