论文标题

50 w平均功率HO:YAG SESAM模型螺旋杆薄盘振荡器,2.1 UM

50-W average power Ho:YAG SESAM-modelocked thin-disk oscillator at 2.1 um

论文作者

Tomilov, Sergei, Wang, Yicheng, Hoffmann, Martin, Heidrich, Jonas, Golling, Matthias, Keller, Ursula, Saraceno, Clara J.

论文摘要

超平均功率在波长范围内从1.9 um到3 UM的超快激光系统对于广泛的应用程序,例如在光谱,材料处理和作为XUV光谱区域次级源的驱动因素的广泛应用中都很感兴趣。在这一领域,基于掺杂Holmium掺杂的增益材料在2.1 UM上直接发射的激光系统在过去几年中取得了重大进展,但是到目前为止,在功率高功率的高功率激光几何形状中仅显示了很少的结果。特别是,对于直接模型的振荡器,具有高平均功率水平的直接磁盘几何形状有望与以MHz重复速率相当。在本文中,我们演示了半导体可饱和吸收镜(SESAM)模型的HO:YAG薄盘激光器(TDLS),以2.1 UM波长发射,具有创纪录的性能水平。在我们的最高平均功率配置中,我们达到平均功率的50 W,具有1.13 PS脉冲,2.11 UJ的脉冲能量和峰值功率约1.9兆瓦。据我们所知,这代表了最高的平均功率,以及迄今为止从2 UM波长区域中的模型激光器所证明的最高输出脉冲能量。该创纪录的性能水平是通过低损失的高功率煤气机塞姆(SESAM)的近期发展,适合于高腔内功率和脉搏能量。我们还通过在磁盘几何形状和使用SESAM Modelocking中使用此增益材料在高功率下达到较短的脉冲持续时间的局限性,并在此方向上呈现了第一步,并证明了30 W的输出功率,在另一种激光器配置中具有692 FS脉冲。

Ultrafast laser systems operating with high-average power in the wavelength range from 1.9 um to 3 um are of interest for a wide range of applications for example in spectroscopy, material processing and as drivers for secondary sources in the XUV spectral region. In this area, laser systems based on holmium-doped gain materials directly emitting at 2.1 um have made significant progress over the past years, however so far only very few results were demonstrated in power-scalable high-power laser geometries. In particular, the thin-disk geometry is promising for directly modelocked oscillators with high average power levels that are comparable to amplifier systems at MHz repetition rate. In this paper, we demonstrate Semiconductor Saturable Absorber Mirror (SESAM) modelocked Ho:YAG thin-disk lasers (TDLs) emitting at 2.1 um wavelength with record-holding performance levels. In our highest average power configuration, we reach 50 W of average power, with 1.13 ps pulses, 2.11 uJ of pulse energy and ~1.9 MW of peak power. To the best of our knowledge, this represents the highest average power, as well as the highest output pulse energy so far demonstrated from a modelocked laser in the 2 um wavelength region. This record performance level was enabled by the recent development of high-power GaSb-based SESAMs with low loss, adapted for high intracavity power and pulse energy. We also explore the limitations in terms of reaching shorter pulse durations at high power with this gain material in the disk geometry and using SESAM modelocking, and present first steps in this direction, with the demonstration of 30 W of output power, with 692 fs pulses in another laser configuration.

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