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Demonstration of arbitrary temporal shaping of picosecond pulses in a radially polarized Yb-fiber MOPA with > 10 W average power

机译:在具有> 1的径向偏振Yb光纤mOpa中对皮秒脉冲的任意时间整形的演示。 10 W平均功率

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摘要

High precision surface processing has an unmet demand for picosecond pulses with arbitrary temporal profiles in radial polarization states and at high average powers. Here, simultaneous spatial and arbitrary temporal shaping of chirped 10 – 100 picoseconds pulses is demonstrated with an Yb-doped fiber laser system generating an output power of more than 10 W at 40 MHz repetition frequency. The closed-loop control algorithm carves the pulses using a commercial, rugged, and fiberized optical pulse shaper placed at the front end of the system and uses feedback from the output pulse shapes for optimization. Arbitrary complex temporal profiles were demonstrated using a dispersive Fourier transform based technique and limits set by the system were investigated. Pulse shaping in the spatial domain was accomplished using an S-waveplate, fabricated in-house, to change the linearly polarized fundamental mode into a doughnut mode with radial polarization. This was amplified in a final-stage few-mode large-mode area fiber amplifier. Placing both temporal and spatial shaping elements before the power-amplifier avoids complex and potentially lossy conversion of the spatial mode profile at the output and provides an efficient route for power-scaling. The use of properly oriented quarter- and half-wave plates, which have both low loss and high power handling capability, enabled the output to be set to pure radial or azimuthal polarization states. Using commercial off-the-shelf components, our technique is able to immediately enhance the versatility of ultrashort fiber laser systems for high precision material processing and other industrial applications.
机译:高精度表面处理对皮秒脉冲的需求未得到满足,这种皮秒脉冲具有处于径向偏振态且具有高平均功率的任意时间轮廓。在此,利用掺Y光纤激光器在40 MHz重复频率下产生超过10 W的输出功率,证明了10 10 – 100皮秒脉冲的同时空间和任意时间整形。闭环控制算法使用置于系统前端的商用,坚固耐用和光纤化的光脉冲整形器来雕刻脉冲,并使用来自输出脉冲形状的反馈进行优化​​。使用基于色散傅立叶变换的技术演示了任意复杂的时间剖面,并研究了系统设置的限制。使用内部制造的S波片可将空间域中的脉冲整形,以将线性极化的基本模式更改为具有径向极化的甜甜圈模式。这是在最后阶段的少模大模面积光纤放大器中放大的。在功率放大器之前放置时间和空间整形元素可避免在输出端对空间模式轮廓进行复杂且可能有损的转换,并为功率缩放提供了有效的途径。使用具有低损耗和高功率处理能力的正确定向的四分之一和二分之一波片,可以将输出设置为纯径向或方位极化状态。使用商用现货组件,我们的技术能够立即增强超短光纤激光系统的多功能性,以用于高精度材料加工和其他工业应用。

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