Title :
Efficient Pulse Compression Using Tapered Photonic Crystal Fiber at 850 nm
Author :
Raja, R. Vasantha Jayakantha ; Senthilnathan, K. ; Porsezian, K. ; Nakkeeran, K.
Author_Institution :
Dept. of Phys., Pondicherry Univ., Puducherry, India
Abstract :
By using appropriate self-similar scaling analysis, we delineate the generation of linearly chirped solitary pulses in photonic crystal fiber (PCF) at 850 nm to obtain the short pulses with large compression factor and minimal pedestal energy when compared to adiabatic compression scheme. The dispersion and nonlinearity varying nonlinear Schrödinger equation aptly models the pulse propagation in such a PCF. The analytical results demand that the effective dispersion must decrease exponentially while the nonlinearity must increase exponentially in the PCF. Thus, based on the analytical results, we propose the new design of tapered PCF by varying the pitch and diameter of the air hole. We adopt the projection operator method to derive the pulse parameter equations which indeed very clearly describe the self-similar pulse compression process at different parts of the PCF structures. As we are interested in constructing compact compressor, we also introduce another designing of PCF by filling chloroform in the core region. The chloroform filled tapered PCF exhibits low dispersion length for efficient pulse compression with low input pulse energy over small propagation distances.
Keywords :
Schrodinger equation; holey fibres; optical design techniques; optical fibre dispersion; optical pulse compression; optical pulse generation; optical solitons; photonic crystals; air hole; chloroform; compact compressor; compression factor; dispersion length; linearly chirped solitary pulses; nonlinear Schrodinger equation; pedestal energy; projection operator method; propagation distances; pulse energy; pulse parameter equations; pulse propagation; self-similar pulse compression; self-similar scaling analysis; tapered photonic crystal fiber; wavelength 850 nm; Chirp; Dispersion; Equations; Nonlinear optics; Optical pulse compression; Optical pulse generation; Photonic crystal fibers; Finite element method (FEM); photonic crystal fiber (PCF); pulse compression; self-similar analysis; split step Fourier method (SSFM);
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2010.2050865