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Dive into the research topics where T. Schreiber is active.

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Featured researches published by T. Schreiber.


Optics Express | 2003

High-power air-clad large-mode-area photonic crystal fiber laser

Jens Limpert; T. Schreiber; Stefan Nolte; H. Zellmer; T. Tunnermann; Rumen Iliew; Falk Lederer; Jes Broeng; Guillaume Vienne; A. Petersson; Christian Jakobsen

We report on a 2.3 m long air-clad ytterbium-doped large-mode-area photonic crystal fiber laser generating up to 80 W output power with a slope efficiency of 78%. Single transverse mode operation is achieved with a mode-field area of 350 /spl mu/m/sup 2/. No thermo-optical limitations are observed at the extracted /spl sim/35 W/m, therefore such fibers allow scaling to even higher powers.


Optics Express | 2006

Extended single-mode photonic crystal fiber lasers

Jens Limpert; O. Schmidt; Jan Rothhardt; Fabian Röser; T. Schreiber; Andreas Tünnermann; S. Ermeneux; P. Yvernault; F. Salin

We report on an ytterbium-doped photonic crystal fiber with a core diameter of 60 microm and mode-field-area of ~2000 microm(2) of the emitted fundamental mode. Together with the short absorption length of 0.5 m this fiber possesses a record low nonlinearity which makes this fiber predestinated for the amplification of short laser pulses to very high peak powers. In a first continuous-wave experiment a power of 320 W has been extracted corresponding to 550 W per meter. To our knowledge this represents the highest power per unit length ever reported for fiber lasers. Furthermore, the robust single-transverse-mode propagation in a passive 100 microm core fiber with a similar design reveals the potential of extended large-mode-area photonic crystal fibers.


Optics Express | 2004

Low-nonlinearity single-transverse-mode ytterbium-doped photonic crystal fiber amplifier

Jens Limpert; Andreas Liem; M. Reich; T. Schreiber; Stefan Nolte; H. Zellmer; Andreas Tünnermann; Jes Broeng; A. Petersson; Christian Jakobsen

We report on an air-clad large-core single-transverse-mode ytterbium-doped photonic crystal fiber with a mode-field-diameter of 35 microm, corresponding to a mode-field-area of ~1000 microm(2). In a first experiment this fiber is used to amplify 10-ps pulses to a peak power of 60 kW without significant spectral broadening due to self-phase modulation allowing for the frequency up-conversion of these pulses using narrow-bandwidth phase matched nonlinear crystals.


Optics Express | 2005

High-power rod-type photonic crystal fiber laser

Jens Limpert; N. Deguil-Robin; Inka Manek-Hönninger; François Salin; Fabian Röser; Andreas Liem; T. Schreiber; Stefan Nolte; H. Zellmer; Andreas Tünnermann; Jes Broeng; A. Petersson; Christian Jakobsen

We report on a novel ytterbium-doped fiber design that combines the advantages of rod and fiber gain media. The fiber design has outer dimensions of a rod laser, meaning a diameter in the range of a few millimeters and a length of just a few tens of centimeters, and includes two important waveguide structures, one for pump radiation and one for laser radiation. We obtained 120-W output power in single-mode beam quality from a 48-cm-long fiber cane that corresponds to an extracted power of 250 W/m. The fiber has significantly reduced nonlinearity, which therefore allows for scalability in the performance of a high-peak-power fiber laser and amplifier system.


Optics Express | 2002

High-power femtosecond Yb-doped fiber amplifier.

Jens Limpert; T. Schreiber; Tina Clausnitzer; Karsten Zöllner; H.-J. Fuchs; Ernst-Bernhard Kley; H. Zellmer; Andreas Tünnermann

We report on the generation of linearly chirped parabolic pulses with 17-W average power at 75 MHz repetition rate and diffraction-limited beam quality in a large-mode-area ytterbium-doped fiber amplifier. Highly efficient transmission gratings in fused silica are applied to recompress these pulses down to 80-fs with an efficiency of 60%, resulting in a peak power of 1.7 MW. Power scaling limitations given by the amplifier bandwidth are discussed.


Optics Express | 2005

Stress-induced single-polarization single-transverse mode photonic crystal fiber with low nonlinearity

T. Schreiber; Fabian Röser; O. Schmidt; Jens Limpert; R. Iliew; F. Lederer; A. Petersson; Christian Jacobsen; K.P. Hansen; Jes Broeng; Andreas Tünnermann

We report on the design of a single-polarization single-transverse mode large mode area photonic crystal fiber. By including index-matched stress applying elements in the photonic cladding an ultra-broadband single polarization window is obtained while a large mode field area of ~700 microm(2) is maintained. Based on that design, an Yb-doped double-clad photonic crystal fiber is realized that combines low nonlinearity and single polarization properties. A first result of the high power operation using this fiber is demonstrated.


Optics Letters | 2005

131 W 220 fs fiber laser system.

Fabian Röser; J. Rothhard; Bülend Ortaç; Andreas Liem; O. Schmidt; T. Schreiber; Jens Limpert; Andreas Tünnermann

We report on an ytterbium-doped photonic-crystal-fiber-based chirped-pulse amplification system delivering 131 W average power 220 fs pulses at 1040 nm center wavelength in a diffraction-limited beam. The pulse repetition rate is 73 MHz, corresponding to a pulse energy of 1.8 microJ and a peak power as high as 8.2 MW.


IEEE Journal of Selected Topics in Quantum Electronics | 2006

High-power ultrafast fiber laser systems

Jens Limpert; Fabian Röser; T. Schreiber; Andreas Tünnermann

The recent demonstration of rare-earth-doped fiber lasers with a continuous wave output power well above the kilowatt level with diffraction-limited beam quality has proven that fiber lasers constitute a power-scalable solid-state laser concept. To generate intense pulses from a fiber, several fundamental limitations have to be overcome. Nevertheless, novel experimental strategies and fiber designs offer an enormous potential toward laser systems with high average powers and high pulse energies. This paper reviews the challenges, achievements, and perspectives of ultrashort pulse generation and amplification in fibers.


IEEE Journal of Selected Topics in Quantum Electronics | 2007

The Rising Power of Fiber Lasers and Amplifiers

Jens Limpert; Fabian Röser; Sandro Klingebiel; T. Schreiber; Christian Wirth; Ramona Eberhardt; A. Tiinnermann

The first rare-earth-doped fiber lasers were operated in the early 1960s, and produced a few milliwatts at a wavelength around 1 mum. Since the beginning of the decade, an enormous increase of fiber laser output power has been reported, the realm of kilowatt power has been entered, and power levels as high as 100 kW are envisaged. Apart from the power, fiber laser systems are renowned for their inherent compactness, monolithic architecture, and a power-independent beam quality. This paper reviews the challenges, achievements, and perspectives of high-power continuous-wave (CW) laser generation and amplification in fibers.


Optics Express | 2003

All fiber chirped-pulse amplification system based on compression in air-guiding photonic bandgap fiber.

Jens Limpert; T. Schreiber; Stefan Nolte; H. Zellmer; Andreas Tünnermann

We report on the experimental demonstration of an all fiber CPA system based on a step-index fiber stretcher and an air-guiding photonic crystal fiber compressor. The ultrafast fiber laser system producing an average power of 6.0 W with 100-fs pulses at 73 MHz, what corresponds to a peak power out of the compressor fiber of 0.82 MW. This completely fiber integrated approach has the potential to be scaled to significantly higher peak powers.

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Jes Broeng

University of Copenhagen

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