Title :
650 fs pulses at 1045 nm from a passively Q-switched Nd:YVO4 microchip laser system
Author :
Lehneis, R. ; Steinmetz, A. ; Limpert, Jens ; Tunnermann, Andreas
Author_Institution :
Inst. of Appl. Phys., Friedrich-Schiller-Univ. Jena, Jena, Germany
Abstract :
Summary form only given. In this contribution we present a novel concept to produce ultrashort pulses from a passively Q-switched Nd:YVO4 microchip [1] laser system reaching the sub-ps range with a tunable emission wavelength from 1030nm to 1050nm.This method comprises two stages: one that carries out the nonlinear compression of the spectrally broadened microchip pulses with a grating compressor [2] and a second stage, in which these pulses are coupled into a further waveguide for additional spectral broadening through self-phase modulation (SPM) followed by a narrow band-pass filter [3]. The high peak power and the short pulse duration of the compressed pulses result in wide SPM spectra with a nearly un-chirped region at the spectral edges, which is used for this concept. Therefore, the spectrally broadened pulses can be filtered afterwards far away from the original central wavelength, which leads in addition to temporal pulse shortening and cleaning to an adjustable wavelength shift. To the best of our knowledge the combination of nonlinear compression and subsequent spectral filtering is used the first time for generating wavelength-tunable sub-ps pulses from a Q-switched laser source.The setup of a proof-of-principle experiment (Fig. 1a) consists of a fiber-amplified Nd:YVO4 microchip laser source, which emits SPM-broadened 72 ps pulses followed by a grating compressor leading to pulse durations of 5.9 ps with a central wavelength of 1064 nm. Afterwards, these compressed pulses are coupled into a passive single-mode fiber (0.3 m long, 10 μm core diameter), in which SPM broadens the spectrum to a bandwidth of approximately 40 nm (-20 dB) (Fig. 1c). The used band-pass has a spectral transmission window of 6 nm with a tunable central filter wavelength. Subsequent filtering at the lower edge of the pulse spectrum results in pedestalfree pulses with a 650 fs full width at half maximum (FWHM) duration corresponding to an autocorrelation trace of - .9 ps (FWHM) (Fig. 1b). At the same time the filtered pulses have been shifted from 1064 nm to 1045 nm (Fig. 1c), which is very advantageous for subsequent power amplification in Yb-doped fibers. In conclusion, the presented method appears very suitable for passively Q-switched microchip laser systems to reach the sub-ps range. Moreover, this concept seems very suitable for the integration into an all-fiber system, which would result in very compact and stable lasers delivering ultrashort pulses. Such a laser can find many applications, especially in the field of micromachining and might be a very promising alternative to conventional mode-locked laser systems.
Keywords :
Q-switching; band-pass filters; diffraction gratings; laser beam machining; laser beams; laser mode locking; laser modes; laser tuning; microchip lasers; neodymium; optical fibre amplifiers; optical filters; optical pulse compression; self-phase modulation; spectral line broadening; ytterbium; yttrium compounds; FWHM; Q-switched laser source; SPM-broadened pulses; YVO4:Nd; Yb-doped fibers; adjustable wavelength shift; all-fiber system; autocorrelation trace; compact lasers; conventional mode-locked laser systems; fiber-amplified Nd:YVO4 microchip laser source; full width at half maximum; grating compressor; high peak power; micromachining; narrow band-pass filter; nonlinear compression; original central wavelength; passive single-mode fiber; passively Q-switched Nd:YVO4 microchip laser system; pedestal-free pulses; pulse spectrum; self-phase modulation; short pulse duration; size 0.3 m; size 10 mum; spectral broadening; spectral edges; spectral transmission window; stable lasers; sub-ps range; subsequent filtering; subsequent power amplification; subsequent spectral filtering; temporal pulse cleaning; temporal pulse shortening; time 0.9 ps; time 5.9 ps; time 650 fs; time 72 ps; tunable central filter wavelength; tunable emission wavelength; ultrashort pulses; un-chirped region; waveguide; wavelength 1030 nm to 1050 nm; wavelength 1064 nm to 1045 nm; wavelength-tunable sub-ps pulses; wide SPM spectra; Band-pass filters; Fiber lasers; Laser mode locking; Microchip lasers; Optical fiber filters; Optical pulse generation; Optical variables measurement;
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.2013.6800645