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140 μJ, narrow linewidth, robustly single-transverse mode nanosecond infrared fiber laser platform with tine pulse tailoring capability

机译:140μJ,窄线宽,鲁棒的单横模纳秒红外光纤激光器平台,具有尖脉冲调整功能

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The work presented in this paper had two main objectives. The first objective was to develop a very stable nanosecond infrared pulsed fiber laser oscillator platform offering a straightforward and accurate control over the pulse characteristics in the time domain. The second objective was to deliver what we call "high quality photons", which means delivering pulses with high energy and excellent beam quality and narrow spectral linewidth, all at the same time and with very good stability. Oscillators with such attributes find applications in material processing fields, for example in memory repair, photovoltaic cell processing or micro-milling, to name just a few. In order to achieve the first objective, an embedded digital platform using high-speed electronics was developed. Using this platform and a computer, pulse shapes have been programmed straightforwardly in the non-volatile memory of the instrument, with an amplitude resolution of 10 bits and a time resolution of 2.5 ns. Optical pulses having tailored temporal profiles, with rise times around 1 ns and pulse energy stability levels better than ± 3% at 3σ, have been generated at high repetition rates (> 100 kHz) at a wavelength of 1064 nm. Achieving the second objective required amplifying the low power master oscillator signal (10-100 mW) to output power levels in the range of 1 to 50 W. A multi-clad, polarization maintaining, Yb-doped large mode area fiber was specially designed to allow for the amplification of high peak power optical pulses, while keeping control over the nonlinear effects and preserving an excellent beam quality. Optical pulses with tailored shapes and pulse energy levels in excess of 140 μJ have been produced for pulse durations in the range of 10 to 80 ns, with 86% of the power emitted in a 0.5-nm bandwidth. The linearly polarized beam M~2 parameter was smaller than 1.1, with both the astigmatism and the asymmetry below 15%. The pulse energy stability was better than ± 3% at 3σ. We conclude with a discussion about some of the applications of the developed platform.
机译:本文介绍的工作有两个主要目标。第一个目标是开发一个非常稳定的纳秒红外脉冲光纤激光振荡器平台,该平台可在时域内对脉冲特性进行直接而准确的控制。第二个目标是提供我们所谓的“高质量光子”,这意味着同时提供具有高能量,出色光束质量和窄谱线宽的脉冲,并且具有非常好的稳定性。具有这种属性的振荡器可在材料处理领域中找到应用,例如在内存修复,光伏电池处理或微铣削中,仅举几例。为了实现第一个目标,开发了使用高速电子设备的嵌入式数字平台。使用该平台和计算机,可以在仪器的非易失性存储器中直接编程脉冲形状,其幅度分辨率为10位,时间分辨率为2.5 ns。在1064 nm波长下,以高重复率(> 100 kHz)产生了具有定制时间轮廓的光脉冲,其上升时间约为1 ns,脉冲能量稳定性水平在3σ时优于±3%。要达到第二个目标,需要将低功率主振荡器信号(10-100 mW)放大到1至50 W的输出功率水平。专门设计了一种多包,保偏,掺Yb的大模面积光纤,以实现以下目的:允许放大高峰值功率的光脉冲,同时保持对非线性效应的控制并保持出色的光束质量。在10到80 ns范围内的脉冲持续时间内,已产生具有定制形状和超过140μJ脉冲能量的光脉冲,其中86%的功率以0.5 nm的带宽发射。线偏振光束的M〜2参数小于1.1,像散和不对称度均低于15%。脉冲能量稳定性在3σ时优于±3%。最后,我们讨论了已开发平台的一些应用程序。

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