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Dive into the research topics where Dirk Sutter is active.

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Featured researches published by Dirk Sutter.


Optics Letters | 1999

Semiconductor saturable-absorber mirror–assisted Kerr-lens mode-locked Ti:sapphire laser producing pulses in the two-cycle regime

Dirk Sutter; Günter Steinmeyer; Lukas Gallmann; N. Matuschek; F. Morier-Genoud; Ursula Keller; V. Scheuer; G. Angelow; T. Tschudi

Pulses of sub-6-fs duration have been obtained from a Kerr-lens mode-locked Ti:sapphire laser at a repetition rate of 100 MHz and an average power of 300 mW. Fitting an ideal sech(2) to the autocorrelation data yields a 4.8-fs pulse duration, whereas reconstruction of the pulse amplitude profile gives 5.8 fs. The pulse spectrum covers wavelengths from above 950 nm to below 630 nm, extending into the yellow beyond the gain bandwidth of Ti:sapphire. This improvement in bandwidth has been made possible by three key ingredients: carefully designed spectral shaping of the output coupling, better suppression of the dispersion oscillation of the double-chirped mirrors, and a novel broadband semiconductor saturable-absorber mirror.


Optics Letters | 1999

Characterization of sub-6-fs optical pulses with spectral phase interferometry for direct electric-field reconstruction

Lukas Gallmann; Dirk Sutter; N. Matuschek; Günter Steinmeyer; Ursula Keller; C. Iaconis; Ian A. Walmsley

We demonstrate spectral phase interferometry for direct electric-field reconstruction (SPIDER) as a novel method to characterize sub-6-fs pulses with nanojoule pulse energy. SPIDER reconstructs pulse phase and amplitude from a measurement of only two optical spectra by use of a fast noniterative algorithm. SPIDER is well suited to the measurement of ultrabroadband pulses because it is quite insensitive to crystal phase-matching bandwidth and to unknown detector spectral responsivity. Moreover, it combines highly accurate pulse-shape measurement with the potential for online laser system diagnostics at video refresh rates.


Optics Letters | 1997

Self-starting 6.5-fs pulses from a Ti:sapphire laser

I.D. Jung; F. X. Kärtner; N. Matuschek; Dirk Sutter; F. Morier-Genoud; G. Zhang; Ursula Keller; V. Scheuer; M. Tilsch; T. Tschudi

We demonstrate self-starting 6.5-fs pulses from a Kerr-lens mode-locked Ti:sapphire laser with 200-mW average output power at a pulse repetition rate of ~86 M Hz. This is to our knowledge the shortest pulse ever generated directly from a laser. For dispersion compensation we used a prism pair in combination with double-chirped mirrors, which balances the higher-order dispersion of the prism pair and therefore flattens the average total group-delay dispersion in the laser cavity. For self-starting mode locking we used a broadband semiconductor saturable-absorber mirror.


Optics Letters | 2009

High-repetition-rate picosecond pump laser based on a Yb:YAG disk amplifier for optical parametric amplification

Thomas Metzger; Alexander Schwarz; Catherine Y. Teisset; Dirk Sutter; Alexander Killi; Reinhard Kienberger; Ferenc Krausz

We report an optically synchronized picosecond pump laser for optical parametric amplifiers based on an Yb:YAG thin-disk amplifier. At 3 kHz repetition rate, pulse energies of 25 mJ with 1.6 ps pulse duration were achieved with an rms fluctuation in pulse energy of <0.7% by utilizing a broadly intermittent single-energy regime in the deterministic chaos of a continuously pumped regenerative amplifier.


Optics Express | 2008

Subpicosecond thin-disk laser oscillator with pulse energies of up to 25.9 microjoules by use of an active multipass geometry

Joerg Neuhaus; Dominik Bauer; Jing Zhang; Alexander Killi; Jochen Kleinbauer; Malte Kumkar; Sascha Weiler; Mircea Guina; Dirk Sutter; Thomas Dekorsy

The pulse shaping dynamics of a diode-pumped laser oscillator with active multipass cell was studied experimentally and numerically. We demonstrate the generation of high energy subpicosecond pulses with a pulse energy of up to 25.9 microJ at a pulse duration of 928 fs directly from a thin-disk laser oscillator. These results are achieved by employing a selfimaging active multipass geometry operated in ambient atmosphere. Stable single pulse operation has been obtained with an average output power in excess of 76 W and at a repetition rate of 2.93 MHz. Self starting passive mode locking was accomplished using a semiconductor saturable absorber mirror. The experimental results are compared with numerical simulations, showing good agreement including the appearance of Kelly sidebands. Furthermore, a modified soliton-area theorem for approximating the pulse duration is presented.


Optics Letters | 2013

1.1 kW average output power from a thin-disk multipass amplifier for ultrashort laser pulses

Jan-Philipp Negel; Andreas Voss; Marwan Abdou Ahmed; Dominik Bauer; Dirk Sutter; Alexander Killi; Thomas Graf

We report on a thin-disk multipass amplifier for ultrashort laser pulses delivering an average output power of 1105 W. The amplifier was seeded by a Trumpf TruMicro5050 laser with a power of 80 W at a wavelength of 1030 nm, pulse duration of 6.5 ps, and repetition rate of 800 kHz. The energy of the amplified pulses is 1.38 mJ with a duration of 7.3 ps. The amplifier exhibits an optical efficiency of 44% and a slope efficiency of 46%. The beam quality was measured to be better than M²=1.25.


Optics Express | 2012

Mode-locked Yb:YAG thin-disk oscillator with 41 µJ pulse energy at 145 W average infrared power and high power frequency conversion

Dominik Bauer; Ivo Zawischa; Dirk Sutter; Alexander Killi; Thomas Dekorsy

We demonstrate the generation of 1.1 ps pulses containing more than 41 µJ of energy directly out of an Yb:YAG thin-disk without any additional amplification stages. The laser oscillator operates in ambient atmosphere with a 3.5 MHz repetition rate and 145 W of average output power at a fundamental wavelength of 1030 nm. An average output power of 91.5 W at 515 nm was obtained by frequency doubling with a conversion efficiency exceeding 65%. Third harmonic generation resulted in 34 W at 343 nm at 34% efficiency.


Optics Letters | 2001

Spatially resolved amplitude and phase characterization of femtosecond optical pulses

Lukas Gallmann; Günter Steinmeyer; Dirk Sutter; T. Rupp; C. Iaconis; Ian A. Walmsley; Ursula Keller

Ultrabroadband pulses exhibit a frequency-dependent mode size owing to the wavelength dependence of free-space diffraction. Additionally, rather complex lateral dependence of the temporal pulse shape has been reported for Kerr-lens mode-locked lasers and broadband amplifier chains and in frequency-domain pulse shapers, for example. We demonstrate an ultrashort-pulse characterization technique that reveals lateral pulse-shape variations by spatially resolved amplitude and phase measurements by use of spectral phase interferometry for direct electric-field reconstruction (SPIDER). Unlike with autocorrelation techniques, with SPIDER we can obtain spatially resolved pulse characterization even after the nonlinear process. Thus, with this method the spectral phase of the pulse can be resolved very rapidly along one lateral beam axis in a single measurement.


Optics Express | 2015

Ultrafast thin-disk multipass laser amplifier delivering 1.4 kW (4.7 mJ, 1030 nm) average power converted to 820 W at 515 nm and 234 W at 343 nm

Jan-Philipp Negel; André Loescher; Andreas Voss; Dominik Bauer; Dirk Sutter; Alexander Killi; Marwan Abdou Ahmed; Thomas Graf

We report on an Yb:YAG thin-disk multipass laser amplifier delivering sub-8 ps pulses at a wavelength of 1030 nm with 1420 W of average output power and 4.7 mJ of pulse energy. The amplifier is seeded by a regenerative amplifier delivering 6.5 ps pulses with 300 kHz of repetition rate and an average power of 115 W. The optical efficiency of the multipass amplifier was measured to be 48% and the beam quality factor was better than M2 = 1.4. Furthermore we report on the external second harmonic generation from 1030 nm to 515 nm using an LBO crystal leading to an output power of 820 W with 2.7 mJ of energy per pulse. This corresponds to a conversion efficiency of 70%. Additionally, 234 W of average power were obtained at the third harmonic with a wavelength of 343 nm.


Optics Letters | 2014

Energy scaling of Kerr-lens mode-locked thin-disk oscillators

Jonathan Brons; Vladimir Pervak; Elena Fedulova; Dominik Bauer; Dirk Sutter; Vladimir L. Kalashnikov; Alexander Apolonskiy; Oleg Pronin; Ferenc Krausz

Geometric scaling of a Kerr-lens mode-locked Yb:YAG thin-disk oscillator yields femtosecond pulses with an average output power of 270 W. The scaled system delivers femtosecond (210-330 fs) pulses with a peak power of 38 MW. These values of average and peak power surpass the performance of any previously reported femtosecond laser oscillator operated in atmospheric air.

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N. Matuschek

École Polytechnique Fédérale de Lausanne

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T. Tschudi

Technische Universität Darmstadt

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Thomas Metzger

Ludwig Maximilian University of Munich

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