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Generation of broadband laser by high-frequency bulk phase modulator with multipass configuration

机译:通过多通道配置的高频体相位调制器生成宽带激光器

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A new technique is presented for obtaining a large broadband nanosecond-laser pulse. This technique is based on multipass phase modulation of a single-frequency nanosecond-laser pulse from the integrated front-end source, and it is able to shape the temporal profile of the pulse arbitrarily, making this approach attractive for high-energy-density physical experiments in current laser fusion facilities. Two kinds of cavity configuration for multipass modulation are proposed, and the performances of both of them are discussed theoretically in detail for the first time to our knowledge. Simulation results show that the bandwidth of the generated laser pulse by this approach can achieve more than 100 nm in principle if adjustment accuracy of the time interval between contiguous passes is controlled within 0.1% of a microwave period. In our preliminary experiment, a 2 ns laser pulse with 1.35-nm bandwidth in 1053 nm is produced via this technique, which agrees well with the theoretical result. Owing to an all-solid-state structure, the energy of the pulse achieves 25 mu J. In the future, with energy compensation and spectrum filtering, this technique is expected to generate a nanosecond-laser pulse of 3 nm or above bandwidth with energy of about 100 mu J. (C) 2014 Optical Society of America
机译:提出了一种获取大宽带纳秒激光脉冲的新技术。该技术基于来自集成前端源的单频纳秒激光脉冲的多通道相位调制,并且能够任意成形脉冲的时间轮廓,从而使该方法对高能量密度物理方法具有吸引力。在当前的激光聚变设备中进行实验。提出了两种用于多通道调制的腔结构,并且首次对两种腔的性能进行了理论上的详细讨论。仿真结果表明,如果将连续通过之间的时间间隔的调整精度控制在微波周期的0.1%以内,则通过这种方法产生的激光脉冲的带宽原则上可以达到100 nm以上。在我们的初步实验中,通过这种技术产生了一个2 ns的激光脉冲,其在1.053 nm处的带宽为1.35 nm,这与理论结果非常吻合。由于采用全固态结构,脉冲能量达到25μJ。将来,通过能量补偿和频谱过滤,该技术有望产生3 nm或更高带宽的纳秒激光脉冲,能量约100亩J.(C)2014年美国光学学会

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