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Dive into the research topics where C. R. E. Baer is active.

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Featured researches published by C. R. E. Baer.


Optics Express | 2012

275 W average output power from a femtosecond thin disk oscillator operated in a vacuum environment.

Clara J. Saraceno; Florian Emaury; Oliver H. Heckl; C. R. E. Baer; Martin Hoffmann; Cinia Schriber; Matthias Golling; Thomas Südmeyer; Ursula Keller

We present an ultrafast thin disk laser that generates an average output power of 275 W, which is higher than any other modelocked laser oscillator. It is based on the gain material Yb:YAG and operates at a pulse duration of 583 fs and a repetition rate of 16.3 MHz resulting in a pulse energy of 16.9 μJ and a peak power of 25.6 MW. A SESAM designed for high damage threshold initiated and stabilized soliton modelocking. We reduced the nonlinearity of the atmosphere inside the cavity by several orders of magnitude by operating the oscillator in a vacuum environment. Thus soliton modelocking was achieved at moderate amounts of self-phase modulation and negative group delay dispersion. Our approach opens a new avenue for power scaling femtosecond oscillators to the kW level.


Optics Letters | 2010

Femtosecond thin-disk laser with 141 W of average power

C. R. E. Baer; Christian Kränkel; Clara J. Saraceno; Oliver H. Heckl; Matthias Golling; Rigo Peters; Klaus Petermann; Thomas Südmeyer; Günter Huber; Ursula Keller

We present a semiconductor saturable absorber mirror mode-locked thin disk laser based on Yb:Lu(2)O(3) with an average power of 141 W and an optical-to-optical efficiency of more than 40%. The ideal soliton pulses have an FWHM duration of 738 fs, an energy of 2.4 microJ, and a corresponding peak power of 2.8 MW. The repetition rate was 60 MHz and the beam was close to the diffraction limit with a measured M(2) below 1.2.


Optics Express | 2008

Femtosecond thin disk laser oscillator with pulse energy beyond the 10-microjoule level

Sergio V. Marchese; C. R. E. Baer; Anna G. Engqvist; S. Hashimoto; Deran J. Maas; Matthias Golling; Thomas Südmeyer; Ursula Keller

We report on a passively mode-locked Yb:YAG thin disk laser oscillator that generates 11.3-microJ pulses without the use of any additional external amplification. A repetition rate of 4 MHz is obtained using a 23.4-m-long multiple-pass cavity that extends the resonator length to a total of 37 m. The nearly transform-limited pulses at 45 W of average output power have a duration of 791 fs with a 1.56-nm-broad spectrum centered at 1030 nm. The laser is operated in a helium atmosphere to eliminate the air nonlinearity inside the resonator that previously limited the pulse energy.


IEEE Journal of Selected Topics in Quantum Electronics | 2012

SESAMs for High-Power Oscillators: Design Guidelines and Damage Thresholds

Clara J. Saraceno; Cinia Schriber; Mario Mangold; Martin Hoffmann; O. H. Heckl; C. R. E. Baer; Matthias Golling; T. Südmeyer; Ursula Keller

We present for the first time to the best of our knowledge a systematic study of lifetime and damage of semiconductor saturable absorber mirrors (SESAMs) designed for operation in high-power oscillators. We characterize and compare nonlinear reflectivity and inverse saturable absorption (ISA) parameters as well as damage threshold and lifetime of different representative SESAMs under test using a nonlinear reflectivity measurement setup at unprecedented high fluence levels. We investigate the catastrophic damage that occurs at very high fluences by demonstrating a dependence of the damage threshold on the ISA parameter F2 and the maximum reflectivity fluence F0. We can clearly demonstrate that the damage fluence Fd scales proportionally to √F2 for all SESAMs. In the case of SESAMs with the same absorber where the product Fsat .ΔR is constant, the damage fluence Fd scales proportionally to F0. Therefore, damage occurs due to heating of the lattice by the energy absorbed due to the ISA process and is not related to the quantum well (QW) absorbers. Furthermore, we present guidelines on how to design samples with high saturation fluences, reduced induced absorption, and high damage thresholds. Using multiple QWs and a suitable di-electric topsection, we achieved SESAMs with saturation fluences >;200 μj/cm2, nonsaturable losses <;0.1%, and reduced ISA. Our best sample could not be damaged at a maximum available fluence of 0.21 J/cm2 and a peak intensity of 370 GW/cm2. These SESAMs will be suitable for future high-power femtosecond oscillators in the kilowatt average output power regime, which is very interesting for attosecond science and industrial material processing applications.


Optics Express | 2007

Efficient femtosecond high power Yb:Lu2O3 thin disk laser

Sergio V. Marchese; C. R. E. Baer; Rigo Peters; Christian Kränkel; Anna G. Engqvist; Matthias Golling; Deran J. Maas; Klaus Petermann; Thomas Südmeyer; G. Huber; Ursula Keller

We demonstrate the first passively mode-locked thin disk laser based on Yb:Lu(2)O(3). The laser generates 370-fs pulses with 20.5 W of average power in a diffraction-limited beam (M(2) < 1.1). The nearly transform-limited pulses have a spectral bandwidth of 3.4 nm centered near 1034 nm. With slightly longer pulses (523 fs) we obtained 24 W of average power at a pump power of 56 W, resulting in an optical-to-optical efficiency of 43%, which is higher than for any previously mode-locked thin disk laser.


Optics Express | 2012

Frontiers in passively mode-locked high-power thin disk laser oscillators.

C. R. E. Baer; O. H. Heckl; Clara J. Saraceno; Cinia Schriber; Christian Kränkel; Thomas Südmeyer; Ursula Keller

Semiconductor saturable absorber mirror (SESAM) mode-locked thin disk lasers define the state-of-the-art performance for high average power and high pulse energy femtosecond laser oscillators. To date pulse energies above 30 µJ and average powers above 140 W have been demonstrated. In this paper we review the achievements of mode-locked thin disk lasers in terms of average power and pulse energy. Stable mode locking requires single transverse mode operation even at the highest average power, which is challenging and therefore addressed in more detail. We then summarize our expectations on the main challenges and limitiations for the next generation of mode-locked thin disk laser oscillators with an average power above 500 W and pulse energies in excess of 100 µJ.


Optics Express | 2010

Continuous-wave and modelocked Yb:YCOB thin disk laser: first demonstration and future prospects

O. H. Heckl; Christian Kränkel; C. R. E. Baer; Clara J. Saraceno; Thomas Südmeyer; Klaus Petermann; Günter Huber; Ursula Keller

Yb:YCOB is a very attractive material for femtosecond pulse generation given its broad emission bandwidth. We demonstrate continuous-wave power scaling in the thin disk geometry to the 100-W level with a 40% optical-to-optical efficiency in multi-mode operation. Furthermore, we present initial modelocking results in the thin disk geometry, achieving pulse durations as short as 270 fs. The modelocked average power is, however, limited to less than 5 W because of transverse mode degradation. This is caused by anisotropic thermal aberrations in the 15% Yb-doped thin disks which were 300 to 400 µm thick. This result confirms the potential of Yb:YCOB to generate short femtosecond pulses in the thin disk geometry but also makes clear that significantly thinner disks are required to overcome the thermal limitations for high power operation.


Optics Letters | 2009

Femtosecond Yb:Lu(2)O(3) thin disk laser with 63 W of average power.

C. R. E. Baer; Christian Kränkel; Clara J. Saraceno; O. H. Heckl; Matthias Golling; Thomas Südmeyer; Rigo Peters; Klaus Petermann; G. Huber; U. Keller

We present successful power-scaling of an Yb:Lu(2)O(3) thin disk laser to record high-power levels both in cw and mode-locked operation. In a simple multimode resonator we achieved 149 W of output power in cw operation with 73% optical-to-optical efficiency (eta(opt)). Building an 81 MHz fundamental transverse mode resonator with dispersion compensation and a semiconductor saturable absorber mirror (SESAM) for passive mode locking we achieved 63 W of average power in 535 fs pulses (eta(opt)=35%). The output beam is nearly diffraction limited (M(2)<1.2). The 0.78 microJ pulses with a peak power of 1.28 MW had a central wavelength of 1034 nm and were close to the Fourier transform limit. With an SESAM with a larger modulation depth we obtained pulses as short as 329 fs at 40 W average power corresponding to a pulse energy of 0.49 microJ and a peak power of 1.32 MW.


Optics Express | 2011

SESAMs for high-power femtosecond modelocking: power scaling of an Yb:LuScO 3 thin disk laser to 23 W and 235 fs

Clara J. Saraceno; Oliver H. Heckl; C. R. E. Baer; Matthias Golling; Thomas Südmeyer; Kolja Beil; Christian Kränkel; Klaus Petermann; Günter Huber; Ursula Keller

We report on power scaling of a modelocked thin disk laser based on the broadband mixed sesquioxide material Yb:LuScO₃. One of the key elements to achieve this result was an improved SESAM design with reduced two-photon-absorption (TPA) and high damage threshold. In a first experiment, using a standard antiresonant SESAM with no topcoating, we could demonstrate record short pulse durations of 195 fs at a moderate average power of 9.5 W. Furthermore, we were able to power scale our thin disk laser while keeping the pulses short reaching 23 W at a pulse duration of 235 fs. This was made possible by designing a new SESAM with multiple quantum wells (QW) and a suitable dielectric topcoating. We will present SESAM optimization guidelines for short pulse generation from high-power modelocked oscillators.


Optics Express | 2011

Temporal pulse compression in a xenon-filled Kagome-type hollow-core photonic crystal fiber at high average power

O. H. Heckl; Clara J. Saraceno; C. R. E. Baer; Thomas Südmeyer; Y. Y. Wang; Yu Cheng; Fetah Benabid; Ursula Keller

We spectrally broaden 1-ps pulses from a 14.3-W, 10.6-MHz thin-disk laser in a 30.5-cm long Xe-filled HC-PCF. After compression, we achieve 9.1-W in 470-fs pulses (63% overall efficiency). No depolarization or damage is observed.

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Thomas Südmeyer

École Polytechnique Fédérale de Lausanne

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Christian Kränkel

Institut für Kristallzüchtung

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Klaus Petermann

Technical University of Berlin

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Günter Huber

Technical University of Berlin

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