Voici les éléments 1 - 10 sur 12
  • Publication
    Accès libre
    Cutting-Edge High-Power Ultrafast Thin Disk Oscillators
    Saraceno, Clara J
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    Schriber, Cinia
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    Emaury, Florian
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    Heckl, Oliver H
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    Baer, Cyrill R. E
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    Beil, Kolja
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    Kränkel, Christian
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    Golling, Matthias
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    Keller, Ursula
    A growing number of applications in science and industry are currently pushing the development of ultrafast laser technologies that enable high average powers. SESAM modelocked thin disk lasers (TDLs) currently achieve higher pulse energies and average powers than any other ultrafast oscillator technology, making them excellent candidates in this goal. Recently, 275 W of average power with a pulse duration of 583 fs were demonstrated, which represents the highest average power so far demonstrated from an ultrafast oscillator. In terms of pulse energy, TDLs reach more than 40 µJ pulses directly from the oscillator. In addition, another major milestone was recently achieved, with the demonstration of a TDL with nearly bandwidth-limited 96-fs long pulses. The progress achieved in terms of pulse duration of such sources enabled the first measurement of the carrier-envelope offset frequency of a modelocked TDL, which is the first key step towards full stabilization of such a source. We will present the key elements that enabled these latest results, as well as an outlook towards the next scaling steps in average power, pulse energy and pulse duration of such sources. These cutting-edge sources will enable exciting new applications, and open the door to further extending the current performance milestones.
  • Publication
    Accès libre
    Experimentally verified pulse formation model for high-power femtosecond VECSELs
    Sieber, Oliver D
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    Mangold, Mario
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    Golling, Matthias
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    Tilma, Bauke W
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    Keller, Ursula
    Optically pumped vertical-external-cavity surface-emitting lasers (OP-VECSELs), passively modelocked with a semiconductor saturable absorber mirror (SESAM), have generated the highest average output power from any sub-picosecond semiconductor laser. Many applications, including frequency comb synthesis and coherent supercontinuum generation, require pulses in the sub-300-fs regime. A quantitative understanding of the pulse formation mechanism is required in order to reach this regime while maintaining stable, high-average-power performance. We present a numerical model with which we have obtained excellent quantitative agreement with two recent experiments in the femtosecond regime, and we have been able to correctly predict both the observed pulse duration and the output power for the first time. Our numerical model not only confirms the soliton-like pulse formation in the femtosecond regime, but also allows us to develop several clear guidelines to scale the performance toward shorter pulses and higher average output power. In particular, we show that a key VECSEL design parameter is a high gain saturation fluence. By optimizing this parameter, 200-fs pulses with an average output power of more than 1 W should be possible.
  • Publication
    Accès libre
    Self-referenceable frequency comb from an ultrafast thin disk laser
    Saraceno, Clara J
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    Pekarek, Selina
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    Heckl, Oliver H
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    Baer, Cyrill R. E
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    Schriber, Cinia
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    Golling, Matthias
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    Beil, Kolja
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    Kränkel, Christian
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    Huber, Günter
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    Keller, Ursula
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    We present the first measurement of the carrier envelope offset (CEO) frequency of an ultrafast thin disk laser (TDL). The TDL used for this proof-of-principle experiment was based on the gain material Yb:Lu2O3 and delivered 7 W of average power in 142-fs pulses, which is more than two times shorter than previously realized with this material. Using only 65 mW of the output of the laser, we generated a coherent octave-spanning supercontinuum (SC) in a highly nonlinear photonic crystal fiber (PCF). We detected the CEO beat signal using a standard ƒ-to-2ƒ interferometer, achieving a signal-to-noise ratio of >25 dB (3 kHz resolution bandwidth). The CEO frequency was tunable with the pump current with a slope of 33 kHz/mA. This result opens the door towards high-power frequency combs from unamplified oscillators. Furthermore, it confirms the suitability of these sources for future intralaser extreme nonlinear optics experiments such as high harmonic generation and VUV frequency comb generation from compact sources.
  • Publication
    Accès libre
    275 W average output power from a femtosecond thin disk oscillator operated in a vacuum environment
    Saraceno, Clara J
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    Emaury, Florian
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    Heckl, Oliver. H
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    Baer, Cyrill. R. E
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    Schriber, Cinia
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    Golling, Matthias
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    Keller, Ursula
    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.
  • Publication
    Accès libre
    Yb-doped mixed sesquioxides for ultrashort pulse generation in the thin disk laser setup
    Beil, Kolja
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    Saraceno, Clara J
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    Schriber, Cinia
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    Emaury, Florian
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    Heckl, Oliver H
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    Baer, Cyrill R. E
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    Golling, Matthias
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    Keller, Ursula
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    Kränkel, Christian
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    Huber, Günter
    We report on spectroscopic investigations of the mixed sesquioxide laser materials Yb:LuScO3, Yb:YScO3, and Yb:(Lu,Y,Sc)2O3 as well as mode-locked thin disk laser experiments with Yb:LuScO3 and Yb:(Lu,Y,Sc)2O3. The disordered crystal structures of these materials result in significantly broader emission spectra than for the pure sesquioxides Yb:Sc2O3, Yb:Y2O3, and Yb:Lu2O3 providing a high potential for ultrashort pulse generation. In SESAM mode-locked thin disk laser experiments, pulse durations of around 100 fs could be obtained exploiting >70 % of the gain bandwidth which is to the best of our knowledge the optimum obtained so far for the mode-locked lasers in this setup.
  • Publication
    Accès libre
    SESAM mode-locked Yb:CaGdAlO4 thin disk laser with 62 fs pulse generation
    Diebold, Andreas
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    Emaury, Florian
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    Schriber, Cinia
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    Golling, Matthias
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    Saraceno, Clara J
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    Keller, Ursula
    We present a semiconductor saturable absorber mirror (SESAM) mode-locked thin disk laser (TDL) based on Yb:CaGdAlO4 (Yb:CALGO) generating 62 fs pulses, which is the shortest pulse duration achieved from mode-locked TDLs to date. The oscillator operates at a repetition rate of 65 MHz and delivers 5.1 W of average output power. The short pulse duration of our TDL in combination with the high intracavity peak power of 44 MW makes this oscillator attractive for intracavity table-top extreme nonlinear optics applications such as high harmonic generation and vacuum ultraviolet frequency comb generation. The current average power was limited by the quality of the Yb:CALGO disk. However, power scaling of Yb:CALGO TDLs to the multi-10-W range with short pulse durations (<100  fs) appears feasible in the near future by using thinner disks of better quality and further optimized SESAMs.
  • Publication
    Accès libre
    Sub-100 femtosecond pulses from a SESAM modelocked thin disk laser
    Saraceno, Clara J
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    Heckl, Oliver H
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    Baer, Cyrill R. E
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    Schriber, Cinia
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    Golling, Matthias
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    Beil, Kolja
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    Kränkel, Christian
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    Huber, Günter
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    Keller, Ursula
    We present the first passively modelocked thin disk laser (TDL) with sub-100-fs pulse duration using the broadband sesquioxide gain material Yb:LuScO3 and an optimized SEmiconductor Saturable Absorber Mirror (SESAM). In this proof-of-principle experiment, we obtained 5.1 W of average power at a repetition rate of 77.5 MHz and a pulse duration of 96 fs. We carefully explored and optimized the different parameters on the soliton pulse formation process for the generation of short pulses. In particular, SESAMs combining fast recovery time, high modulation depth and low nonsaturable losses proved crucial to achieve this result even though they are expected to only play a minor role in soliton modelocking. To our knowledge, these are the shortest pulses ever obtained with a modelocked TDL, reaching for the first time the sub-100-fs milestone. This result opens the door to sub-100-fs oscillators with substantially higher power levels in the near future.
  • Publication
    Accès libre
    High-power integrated ultrafast semiconductor disk laser: multi-Watt 10 GHz pulse generation
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    Mangold, Mario
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    Sieber, Oliver D
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    Golling, Matthias
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    Keller, Ursula
    Presented is an optically pumped modelocked integrated externalcavity surface emitting laser (MIXSEL) with a pulse repetition rate of 10 GHz, generating picosecond pulses at 2.4 W average output power at a centre wavelength of 963 nm. The MIXSEL structure integrates both the absorber and the gain layers within the same wafer. The saturable absorber is a single layer of self-assembled InAs quantum dots (QD) and the gain is obtained with seven InGaAs quantum wells. It is shown that the picosecond pulse duration is limited by the slow recovery time of the integrated QD saturable absorber.
  • Publication
    Accès libre
    VECSEL gain characterization
    Mangold, Mario
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    Sieber, Oliver D
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    Krestnikov, Igor L
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    Livshits, Daniil A
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    Golling, Matthias
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    Keller, Ursula
    We present the first full gain characterization of two vertical external cavity surface emitting laser (VECSEL) gain chips with similar designs operating in the 960-nm wavelength regime. We optically pump the structures with continuous-wave (cw) 808-nm radiation and measure the nonlinear reflectivity for 130-fs and 1.4-ps probe pulses as function of probe pulse fluence, pump power, and heat sink temperature. With this technique we are able to measure the saturation behavior for VECSEL gain chips for the first time. The characterization with 1.4-ps pulses resulted in saturation fluences of 40-80 µJ/cm2, while probing with 130-fs pulses yields reduced saturation fluences of 30-50 µJ/cm2 for both structures. For both pulse durations this is lower than previously assumed. A small-signal gain of up to 5% is obtained with this technique. Furthermore, in a second measurement setup, we characterize the spectral dependence of the gain using a tunable cw probe beam. We measure a gain bandwidth of over 26 nm for both structures, full width at half maximum.
  • Publication
    Accès libre
    Dual-gain SESAM modelocked thin disk laser based on Yb:Lu2O3 and Yb:Sc2O3
    Schriber, Cinia
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    Emaury, Florian
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    Diebold, Andreas
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    Link, Sandro
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    Golling, Matthias
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    Beil, Kolja
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    Kränkel, Christian
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    Saraceno, Clara J
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    Keller, Ursula
    We present for the first time a SESAM-modelocked thin-disk laser (TDL) that incorporates two gain materials with different emission spectra in a single TDL resonator. The two gain media used in this experiment are the sesquioxide materials Yb:Lu2O3 and Yb:Sc2O3, which have their spectral emission peak displaced by ≈7 nm. We can benefit from a combined gain bandwidth that is wider than the one provided by a single gain material alone and still conserve the excellent thermal properties of each disk. In these first proof-of-principle experiments we demonstrate pulse durations shorter than previously achieved with the single gain material Yb:Lu2O3. The oscillator generates pulses as short as 103 fs at a repetition rate of 41.7 MHz and a center wavelength of around 1038 nm, with an average output power of 1.4 W. A different cavity layout provides pulses with a duration of 124 fs at an output power of 8.6 W. This dual-gain approach should allow for further power scaling of TDLs and these first results prove this method to be a promising new way to combine the record output-power performance of modelocked TDLs with short pulse durations.