Mathias Siebold
Helmholtz-Zentrum Dresden-Rossendorf
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Featured researches published by Mathias Siebold.
Optics Letters | 2008
Mathias Siebold; Marco Hornung; Ragnar Boedefeld; Sebastian Podleska; Sandro Klingebiel; Christoph Wandt; Ferenc Krausz; Stefan Karsch; Reinhard Uecker; Axel Jochmann; Joachim Hein; Malte C. Kaluza
We present what we believe to be the first terawatt diode-pumped laser employing single-crystalline Yb:CaF(2) as the amplifying medium. A maximum pulse energy of 420 mJ at a repetition rate of 1 Hz was achieved by seeding with a stretched femtosecond pulse 2 ns in duration, preamplified to 40 mJ. After recompression, a pulse energy of 197 mJ and a duration of 192 fs were obtained, corresponding to a peak power of 1 TW. Furthermore, nanosecond pulses containing an energy of up to 905 mJ were generated without optical damage.
Optics Letters | 2014
Alexander Kessler; Marco Hornung; Sebastian Keppler; Frank Schorcht; Marco Hellwing; Hartmut Liebetrau; Jörg Körner; Alexander Sävert; Mathias Siebold; M. Schnepp; Joachim Hein; M. C. Kaluza
We report the amplification of laser pulses at a center wavelength of 1034 nm to an energy of 16.6 J from a fully diode-pumped amplifier using Yb:CaF2 as the active medium. Pumped by a total optical power of 300 kW from high-power laser diodes, a gain factor of g=6.1 was achieved in a nine-pass amplifier configuration agreeing with numerical simulations. A measured spectral bandwidth of 10 nm full width at half-maximum promises a bandwidth-limited compression of the pulses down to a duration of 150 fs. These are, to our knowledge, the most energetic laser pulses achieved from a diode-pumped chirped-pulse amplifier so far.
Optics Express | 2008
Mathias Siebold; Joachim Hein; Christoph Wandt; Sandro Klingebiel; Ferenc Krausz; Stefan Karsch
Diode-pumped nanosecond multi-pass laser amplification to the joule level using an Yb:YAG slab crystal has been demonstrated. A maximum output pulse energy of 2.9 J at an optical-to-optical efficiency of 10% has been achieved. The seed pulses with a pulse duration of 6.4 ns were generated in a Q-switched Yb:YAG laser and amplified up to a pulse energy of 200mJ in a multi-pass booster amplifier. A maximum average output power of 15W at a repetition rate of 10 Hz has been measured. We also present a relay imaging semi-stable cavity for multi-pass amplification and a diode-pumping scheme employing horizontally stacked high-power laser diodes.
Proceedings of SPIE | 2013
Mathias Siebold; Fabian Roeser; Markus Loeser; Daniel Albach; U. Schramm
We introduce the directly diode-pumped PEnELOPE laser-system which is designed for a pulse energy of 150 J, a repetition rate of 1Hz and a pulse duration of 120 fs. The principle setup of amplifier and stretcher-compressor system as well as the pumping, energy extraction and cooling scheme of the power amplifiers will be reported. In this paper we focus on numerical modeling as well as design studies.
Optics Letters | 2008
Christoph Wandt; Sandro Klingebiel; Mathias Siebold; Zsuzsanna Major; Joachim Hein; Ferenc Krausz; Stefan Karsch
A novel all-diode-pumped master oscillator power amplifier system based on Yb:YAG crystal rods has been developed. It consists of a Q-switched oscillator delivering 3 mJ, 6.4 ns pulses at a 10 Hz repetition rate and an additional four-pass amplifier, which boosts the output energy to 220 mJ, while a close to TEM(00) beam quality could be observed. Additionally a simulation of the amplification was written that allows for further scaling considerations.
Advanced Solid-State Photonics (2008), paper WF1 | 2008
Stefan Karsch; Zsuzsanna Major; J. A. Fülöp; Izhar Ahmad; Tie-Jun Wang; A. Henig; Sebastian Kruber; Raphael Weingartner; Mathias Siebold; Joachim Hein; Christoph Wandt; Sandro Klingebiel; Jens Osterhoff; Rainer Hörlein; Ferenc Krausz
The Petawatt Field Synthesizer (PFS) at MPQ will deliver few-cycle pulses at Petawatt power. Short-pulse OPCPA and a diode-pumped, CPA Yb:YAG pump laser are key technologies, and results of the ongoing development will be presented.
Scientific Reports | 2017
Lieselotte Obst; S. Göde; Martin Rehwald; Florian Emanuel Brack; Joao Branco; S. Bock; M. Bussmann; T. E. Cowan; Chandra Curry; F. Fiuza; Maxence Gauthier; Rene Gebhardt; U. Helbig; Axel Huebl; Uwe Hübner; A. Irman; Lev Kazak; J. B. Kim; T. Kluge; S. D. Kraft; Markus Loeser; Josefine Metzkes; Rohini Mishra; Christian Rodel; Hans Peter Schlenvoigt; Mathias Siebold; J. Tiggesbäumker; Steffen Wolter; Tim Ziegler; U. Schramm
We report on recent experimental results deploying a continuous cryogenic hydrogen jet as a debris-free, renewable laser-driven source of pure proton beams generated at the 150 TW ultrashort pulse laser Draco. Efficient proton acceleration reaching cut-off energies of up to 20 MeV with particle numbers exceeding 109 particles per MeV per steradian is demonstrated, showing for the first time that the acceleration performance is comparable to solid foil targets with thicknesses in the micrometer range. Two different target geometries are presented and their proton beam deliverance characterized: cylindrical (∅ 5 μm) and planar (20 μm × 2 μm). In both cases typical Target Normal Sheath Acceleration emission patterns with exponential proton energy spectra are detected. Significantly higher proton numbers in laser-forward direction are observed when deploying the planar jet as compared to the cylindrical jet case. This is confirmed by two-dimensional Particle-in-Cell (2D3V PIC) simulations, which demonstrate that the planar jet proves favorable as its geometry leads to more optimized acceleration conditions.
Optics Express | 2013
Jörg Körner; Joachim Hein; Hartmut Liebetrau; Reinhard Seifert; Diethard Klöpfel; Martin Kahle; Markus Loeser; Mathias Siebold; U. Schramm; Malte C. Kaluza
We present a novel approach for the amplification of high peak power femtosecond laser pulses at a high repetition rate. This approach is based on an all-diode pumped burst mode laser scheme. In this scheme, pulse bursts with a total duration between 1 and 2 ms are be generated and amplified. They contain 50 to 2000 individual pulses equally spaced in time. The individual pulses have an initial duration of 350 fs and are stretched to 50 ps prior to amplification. The amplifier stage is based on Yb3+:CaF2 cooled to 100 K. In this amplifier, a total output energy in excess of 600 mJ per burst at a repetition rate of 10 Hz is demonstrated. For lower repetition rates the total output energy per burst can be scaled up to 915 mJ using a longer pump duration. This corresponds to an efficiency as high as 25% of extracted energy from absorbed pump energy. This is the highest efficiency, which has so far been demonstrated for a pulsed Yb3+:CaF2 amplifier.
Optics Letters | 2012
Markus Loeser; Fabian Röser; Almut Reichelt; Mathias Siebold; Stephan Grimm; Doris Litzkendorf; Anka Schwuchow; Johannes Kirchhof; U. Schramm
Fabrication, spectroscopic properties, and laser performance of a Yb:SiO(2) multicomponent glass have been investigated in this paper. The glass system composed of SiO(2), Al(2)O(3), and La(2)O(3) excels in terms of a high thermal stress resistance compared to other laser glasses. The laser experiments were conducted with a 3.4 mm thick and 0.9 mol. % Y(2)O(3) doped sample. A maximum slope efficiency of 51%, a maximum optical to optical efficiency of 42%, and a tuning range from 1010-1090 nm was realized. Due to the promising laser properties and a straightforward fabrication technique it may well qualify as an alternative gain medium in high-energy, ultrashort pulse laser systems.
Optics Express | 2016
Sebastian Eckhardt; Mathias Siebold; Andrés Fabián Lasagni
In the search for alternative materials to replace indium-tin-oxide in transparent electrodes we have structured copper and aluminum thin films (between 5 an 40 nm) for tailoring their optical properties. Micrometer scaled holes were produced using the direct laser interference patterning (DLIP) technique. We compared the optical and electrical parameters of nanosecond and picosecond processed thin films. It was found that the optical transmittance of the structured layers was relatively increased between 25 to 125% while the electrical resistance was marginally influenced. In addition, the laser treatment enhanced the diffuse to total transmission ratio (HAZE) by values ranging from 30 to 82% (relative) as a potential advantage of μm structuring. The results also show that both of the studied metals succeed to match the target which is set by typical applications of indium thin oxide (ITO) films. Furthermore, numerical simulations are performed in order to understand the ablation process of thin film material for ps and ns pulses.