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1.
Opt Express ; 23(5): 5954-71, 2015 Mar 09.
Article in English | MEDLINE | ID: mdl-25836821

ABSTRACT

Degenerate four-wave mixing is considered in large mode area hybrid photonic crystal fibers, combining photonic bandgap guidance and index guidance. Co- and orthogonally polarized pump, signal and idler fields are considered numerically by calculating the parametric gain and experimentally by spontaneous degenerate four-wave mixing. Intermodal and birefringence assisted intramodal phase matching is observed. Good agreement between calculations and experimental observations is obtained. Intermodal four-wave mixing is achieved experimentally with a conversion efficiency of 17%.

2.
Opt Lett ; 40(8): 1741-4, 2015 Apr 15.
Article in English | MEDLINE | ID: mdl-25872062

ABSTRACT

Amplification of 1178 nm light is demonstrated in a large-mode-area single-mode ytterbium-doped hybrid photonic crystal fiber, relying on distributed spectral filtering of spontaneous emission at shorter wavelengths. An output power of 53 W is achieved with 29 dB suppression of parasitic lasing. Further power scaling is limited by parasitic lasing.

3.
Opt Lett ; 40(4): 487-90, 2015 Feb 15.
Article in English | MEDLINE | ID: mdl-25680131

ABSTRACT

Degenerate spontaneous four-wave mixing is considered in a large mode area hybrid photonic crystal fiber. Numerical and experimental results show birefringence assisted four-wave mixing for a certain polarization state of the pump field. The parametric gain can be turned on and off by switching the polarization state of the pump field between the two principal axis of the hybrid photonic crystal fiber.

4.
Opt Lett ; 39(16): 4891-4, 2014 Aug 15.
Article in English | MEDLINE | ID: mdl-25121901

ABSTRACT

The parametric gain range of a degenerate four-wave mixing process is determined in the undepleted pump regime. The gain range is considered with and without taking the mode field distributions of the four-wave mixing components into account. It is found that the mode field distributions have to be included to evaluate the parametric gain correctly in dispersion-tailored speciality fibers and that mode profile engineering can provide a way to increase the parametric gain range.

5.
Opt Express ; 21(15): 18111-24, 2013 Jul 29.
Article in English | MEDLINE | ID: mdl-23938682

ABSTRACT

Spontaneous degenerate four wave mixing (FWM) is investigated in large mode area hybrid photonic crystal fibers, in which photonic bandgap guidance and index guidance is combined. Calculations show the parametric gain is maximum on the edge of a photonic bandgap, for a large range of pump wavelengths. The FWM products are observed on the edges of a transmission band experimentally, in good agreement with the numerical results. Thereby the bandedges can be used to control the spectral positions of FWM products through a proper fiber design. The parametric gain control combined with a large mode area fiber design potentially allows for power scaling of light at wavelengths not easily accessible with e.g. rare earth ions.


Subject(s)
Fiber Optic Technology/instrumentation , Lasers , Models, Theoretical , Refractometry/instrumentation , Surface Plasmon Resonance/instrumentation , Telecommunications/instrumentation , Computer Simulation , Computer-Aided Design , Crystallization , Equipment Design , Equipment Failure Analysis , Light , Photons , Scattering, Radiation
6.
Opt Express ; 20(6): 6010-20, 2012 Mar 12.
Article in English | MEDLINE | ID: mdl-22418478

ABSTRACT

A large-mode-area Ytterbium-doped photonic crystal fiber amplifier with build-in gain shaping is presented. The fiber cladding consists of a hexagonal lattice of air holes, where three rows are replaced with circular high-index inclusions. Seven missing air holes define the large-mode-area core. Light confinement is achieved by combined index and bandgap guiding, which allows for single-mode operation and gain shaping through distributed spectral filtering of amplified spontaneous emission. The fiber properties are ideal for amplification in the long wavelength regime of the Ytterbium gain spectrum above 1100 nm, and red shifting of the maximum gain to 1130 nm is demonstrated.


Subject(s)
Amplifiers, Electronic , Fiber Optic Technology/instrumentation , Lasers , Ytterbium/chemistry , Crystallization/methods , Equipment Design , Equipment Failure Analysis
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