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High-energy Mid-Infrared Cr:ZnS Chirped-pulse oscillator

机译:高能中红外Cr:Zns啁啾脉冲振荡器

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摘要

Femtosecond coherent light sources emitting in the mid-infrared are of particular interest for a number of applications like environmental sensing, medicine, metrology, material processing and telecommunications. Among the alternatives, Cr-doped chalcogenide-based crystalline lasers are the most compact, robust and cheap.For decade pulse energy of these lasers were limited at the level of 1-2 nJ. Finally Cr:ZnS laser with 3.8 nJ pulse energy and 550 mW average output power producing 69-fs pulses was demonstrated very recently [1]. Power scaling of femtosecond crystalline oscillators is not a simple task. The pulse energy of these systems is limited by the pulse breakup due to high third-order optical nonlinearity of the active medium. Increasing the output power over the certain limit result in either multiple-pulsing or harmonic mode-locking regimes. In order to overcome that, the intracavity power density inside the active medium should be reduced. That could be done by using the technique of chirped-pulse-oscillator (CPO). This technique is well-established in fiber and Tisapphire lasers, and has recently been demonstrated with the Cr:YAG and Yb-doped thin-disk lasers. For Cr:ZnSe the analytical theory [2] predicts pulse energies up to 0.5 μJ [3] and initial demonstration of CPO technique has already been performed for Cr:ZnSe as well as Cr:ZnS lasers [4]. We report the successful demonstration of Cr:ZnS CPO pulse energy over 8 nJ. The laser was build on the basis of a classic 4-mirror astigmatically-compensated cavity and was pumped by 1.61 μm cw polarized 5-W Er:fiber laser. The mode-locking was achieved using soft-aperture Kerr lens effect. The compensation of the group-delay dispersion was performed by the chirped mirror. The pulses having the duration ranging from 0.8 to 2 picoseconds were obtained at the pulse repetition rate of 105 MHz. The laser average output power reached 0.88 W with 26% slope efficiency. At output powers over 750 mW we observe leakage of 3-5 % of energy into higher-order modes, visible as the narrow spectral lines. The input-output curve, typical autocorrelation trace, and laser emission spectra for different output pulse energies are shown in the Figure 1.
机译:在中红外发射的飞秒相干光源对于许多应用(例如环境传感,医学,计量学,材料加工和电信)特别感兴趣。在替代品中,Cr掺杂硫族化物基晶体激光器是最紧凑,最坚固且最便宜的激光器。数十年来,这些激光器的脉冲能量一直限制在1-2 nJ的水平。最后,最近证明了具有3.8 nJ脉冲能量和550 mW平均输出功率产生69 fs脉冲的Cr:ZnS激光器[1]。飞秒晶体振荡器的功率缩放并非易事。这些系统的脉冲能量由于活性介质的高三阶光学非线性而受到脉冲破坏的限制。将输出功率增加到超过特定极限会导致多脉冲或谐波锁模状态。为了克服该问题,应该降低活性介质内部的腔内功率密度。这可以通过使用chi脉冲振荡器(CPO)技术来完成。这项技术在光纤激光器和钛宝石激光器中已经确立,并且最近已在Cr:YAG和掺Yb的薄盘激光器中得到证明。对于Cr:ZnSe,分析理论[2]预测脉冲能量高达0.5μJ[3],并且已经对Cr:ZnSe和Cr:ZnS激光器[4]进行了CPO技术的初步演示。我们报告了Cr:ZnS CPO脉冲能量超过8 nJ的成功演示。该激光器是基于经典的4镜面像散补偿腔构建的,并由1.61μmcw偏振5W Er:光纤激光器泵浦。使用软光圈Kerr镜头效果可实现锁模。群延迟色散的补偿是通过chi镜进行的。以105 MHz的脉冲重复频率获得持续时间为0.8到2皮秒的脉冲。激光器的平均输出功率达到0.88 W,斜率效率为26%。在超过750 mW的输出功率下,我们观察到3-5%的能量泄漏到高阶模中,可见于窄谱线。图1显示了不同输出脉冲能量的输入输出曲线,典型自相关曲线以及激光发射光谱。

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