Title :
Impulsive Raman-induced spectral broadening in hydrogen-filled HC-PCF
Author :
Belli, Fevzi ; Abdolvand, A. ; Travers, J.C. ; Chang, Wenge ; Walser, A.M. ; Russell, Philip St.J
Author_Institution :
Max Planck Inst. for the Sci. of Light, Univ. of Erlangen-Nuremberg, Erlangen, Germany
Abstract :
Hollow-core photonic crystal fibre (HC-PCF) is unique host for gas-based nonlinear optical experiments. This is because it offers low-loss single-mode guidance in a micron-sized hollow core along with pressure-tunable dispersion and nonlinearity. In previous work, noble gases have been used as Raman-free nonlinear media, permitting efficient soliton-based pulse compression where the interplay between Kerr nonlinearity and anomalous dispersion results in dramatic self-compression of an ultrashort pulse. Novel phenomena such as UV wavelength conversion and even plasma generation from ~50 fs laser pulses of ~1 μJ energy have been reported [1]. In a different context, HC-PCF filled with molecular gases offers excellent performance as an ultra-low threshold modulator and frequency shifter for nano- and picosecond laser pulses [2]. Motivated by this, here we study experimentally and numerically the propagation of a 40 fs laser pulse in a hydrogen-filled HC-PCF [3]. Since the pump pulse duration is well below the period of one rotational cycle of ortho-hydrogen (57 fs), so that the bandwidth of the pulse is broader than the corresponding Raman frequency shift (18 THz), the interaction takes place in the impulsive regime. In other words, the pump pulse already contains Stokes shifted photons and the Raman process is self-seeded. Moreover, since the pulse duration is much shorter than the phase relaxation time T2 of the molecular coherence, the (Raman) response of the medium is highly non-instantaneous (i.e., nonlocal in time) and affected by the whole pre-history of the interaction [4].
Keywords :
holey fibres; laser beams; optical Kerr effect; optical fibre dispersion; optical fibre losses; optical pulse compression; optical pumping; optical solitons; photonic crystals; plasma production by laser; spectral line broadening; stimulated Raman scattering; Kerr nonlinearity; Raman frequency shift; Raman process; Raman-free nonlinear media; Stokes shifted photons; UV wavelength conversion; anomalous dispersion; energy; frequency 18 THz; frequency shifter; gas-based nonlinear optical experiment; hollow-core photonic crystal fibre; hydrogen-filled HC-PCF; impulsive Raman-induced spectral broadening; impulsive regime; laser pulse propagation; low-loss single-mode guidance; micron-sized hollow core; molecular coherence; molecular gases; nanosecond laser pulses; noble gases; ortho-hydrogen; phase relaxation time; picosecond laser pulses; plasma generation; pressure-tunable dispersion; pulse bandwidth; pump pulse duration; rotational cycle; self-seeded process; soliton-based pulse compression; time 40 fs; time 57 fs; ultra-low threshold modulator; ultrashort pulse self-compression; Decision support systems; Educational institutions; Physics;
Conference_Titel :
Lasers and Electro-Optics Europe (CLEO EUROPE/IQEC), 2013 Conference on and International Quantum Electronics Conference
Conference_Location :
Munich
Print_ISBN :
978-1-4799-0593-5
DOI :
10.1109/CLEOE-IQEC.2013.6800849