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Novel pump head design for high energy 1064 nm oscillator amplifier system for lidar applications

机译:用于激光雷达应用的高能1064 nm振荡器放大器系统的新型泵浦头设计

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Many scientific endeavors are benefitted by the development of increasingly high energy laser sources for lidar applications. Space-based applications for lidar require compact, efficient and high energy sources, and we have designed a novel gain head that is compatible with these requirements. The gain medium for the novel design consists of a composite Nd:YAG/Sm:YAG slab, wherein the Sm:YAG portion absorbs any parasitic 1064 nm oscillations that might occur in the main pump axis. A pump cavity is built around the slab, consisting of angled gold-coated reflectors which allow for five pump passes from each of the four pumping locations around the slab. Pumping is performed with off-axis diode bars, allowing for highly compact conductively cooled design. Optical and thermal modeling of this design was done to verify and predict its performance. In order to ultimately achieve 50 W average power at a repetition rate of 500 Hz, three heads of this design will be used in a MOPA configuration with two stages of amplification. To demonstrate the pump head we built it into a 1064 nm laser cavity and performed initial amplification experiments. Modeling and design of the system is presented along with the initial oscillator and amplifier results. The greatest pulse energy produced from the seeded q-switched linear oscillator was an output of 25 mJ at 500 Hz. With an input of 25 mJ and two planned stages of amplification, we expect to readily reach 100 mJ or more per pulse.
机译:越来越多的激光雷达应用高能激光源的开发使许多科学工作受益。激光雷达的天基应用需要紧凑,高效和高能量的能源,我们设计了与这些要求兼容的新型增益头。用于新颖设计的增益介质由Nd:YAG / Sm:YAG复合平板组成,其中Sm:YAG部分吸收了可能在主泵轴上发生的任何1064 nm寄生振荡。在平板周围建有一个泵腔,该泵腔由成角度的镀金反射器组成,这些反射器允许从平板周围四个抽气位置中的每个位置进行五次抽气。泵浦使用离轴二极管棒进行,从而实现了高度紧凑的传导冷却设计。对该设计进行了光学和热建模,以验证和预测其性能。为了最终以500 Hz的重复频率实现50 W的平均功率,该设计的三个探头将用于具有两级放大的MOPA配置中。为了演示泵浦头,我们将其内置到1064 nm激光腔中并进行了初始放大实验。介绍了系统的建模和设计以及初始振荡器和放大器的结果。从种子调Q线性振荡器产生的最大脉冲能量是500 Hz时25 mJ的输出。输入为25 mJ,并计划了两个放大阶段,我们希望每个脉冲很容易达到100 mJ或更高。

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