Options
Südmeyer, Thomas
Résultat de la recherche
Experimentally verified pulse formation model for high-power femtosecond VECSELs
2013, Sieber, Oliver D, Hoffmann, Martin, Wittwer, Valentin, Mangold, Mario, Golling, Matthias, Tilma, Bauke W, Südmeyer, Thomas, Keller, Ursula
VECSEL gain characterization
2012, Mangold, Mario, Wittwer, Valentin, Sieber, Oliver D, Hoffmann, Martin, Krestnikov, Igor L, Livshits, Daniil A, Golling, Matthias, Südmeyer, Thomas, Keller, Ursula
Femtosecond VECSEL with tunable multi-gigahertz repetition rate
2011, Sieber, Oliver D, Wittwer, Valentin, Mangold, Mario, Hoffmann, Martin, Golling, Matthias, Südmeyer, Thomas, Keller, Ursula
High-power integrated ultrafast semiconductor disk laser: multi-Watt 10 GHz pulse generation
, Wittwer, Valentin, Mangold, Mario, Hoffmann, Martin, Sieber, Oliver D, Golling, Matthias, Südmeyer, Thomas, 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.
High-power integrated ultrafast semiconductor disk laser: multi-Watt 10 GHz pulse generation
2012, Wittwer, Valentin, Mangold, Mario, Hoffmann, Martin, Sieber, Oliver D, Golling, Matthias, Südmeyer, Thomas, Keller, Ursula
Gain characterization and passive modelocking of electrically pumped VECSELs
2012, Pallmann, Wolfgang P, Zaugg, CA, Mangold, Mario, Wittwer, Valentin, Moench, Holger, Gronenborn, S, Miller, Michael, Tilma, Bauke W, Südmeyer, Thomas, Keller, Ursula
Experimentally verified pulse formation model for high-power femtosecond VECSELs
, Sieber, Oliver D, Hoffmann, Martin, Wittwer, Valentin, Mangold, Mario, Golling, Matthias, Tilma, Bauke W, Südmeyer, Thomas, 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.
SESAMs for high-power oscillators: design guidelines and damage thresholds
2012, Saraceno, Clara Jody, Schriber, Cinia, Mangold, Mario, Hoffmann, Martin, Heckl, Oliver Hubert, Baer, Cyrill Roman Emmanuel, Golling, Matthias, Südmeyer, Thomas, Keller, Ursula
Low repetition rate SESAM modelocked VECSEL using an extendable active multipass-cavity approach
2012, Zaugg, CA, Hoffmann, Martin, Pallmann, Wolfgang P, Wittwer, Valentin, Sieber, Oliver D, Mangold, Mario, Golling, Matthias, Weingarten, Kurt J, Tilma, Bauke W, Südmeyer, Thomas
1.55 µm InAs/GaAs Quantum Dots and High Repetition Rate Quantum Dot SESAM Mode-locked Laser
, Zhang, J. Y, Oehler, A. E. H, Resan, B, Kurmulis, S, Zhou, K. J, Wang, Q, Mangold, Mario, Südmeyer, Thomas, Keller, Ursula, Weingarten, K. J, Hogg, R. A
High pulse repetition rate (≥10 GHz) diode-pumped solid-state lasers, modelocked using semiconductor saturable absorber mirrors (SESAMs) are emerging as an enabling technology for high data rate coherent communication systems owing to their low noise and pulse-to-pulse optical phase-coherence. Quantum dot (QD) based SESAMs offer potential advantages to such laser systems in terms of reduced saturation fluence, broader bandwidth, and wavelength flexibility. Here, we describe the development of an epitaxial process for the realization of high optical quality 1.55 µm In(Ga)As QDs on GaAs substrates, their incorporation into a SESAM, and the realization of the first 10 GHz repetition rate QD-SESAM modelocked laser at 1.55 µm, exhibiting ∼2 ps pulse width from an Er-doped glass oscillator (ERGO). With a high areal dot density and strong light emission, this QD structure is a very promising candidate for many other applications, such as laser diodes, optical amplifiers, non-linear and photonic crystal based devices.