基于全光纤啁啾脉冲放大的千瓦级飞秒激光相干合成

Femtosecond laser coherent beam combining system delivering kilowatt-level average power based on all-fiber chirped pulse amplification

  • 摘要: 高功率飞秒光纤激光在先进制造、激光粒子加速和高次谐波产生等领域具有广泛的应用,飞秒光纤激光相干合成技术是突破单根光纤功率极限、实现高功率飞秒激光输出的有效技术手段。搭建了一套基于全光纤结构啁啾脉冲放大的飞秒激光相干偏振合成系统,采用光纤拉伸器并结合随机并行梯度下降算法实现了三路激光放大器的相位调节与稳定相干合成。在总输出功率为1219.1 W时,系统合成功率为1072 W,对应的合成效率为87%。合成光束具有近衍射极限光束质量(M2=1.23),压缩后脉冲宽度为899 fs。此外,还理论分析了光束质量退化对合成效率的影响。该全光纤结构飞秒激光相干合成系统具有优异的稳定性并兼具高功率输出,未来通过增加合成通道数量可以进一步提升输出功率,为高通量超快超强激光的前沿应用提供技术支撑。

     

    Abstract:
    Background High-power femtosecond fiber lasers have extensive applications in advanced manufacturing, laser particle acceleration, high-order harmonic generation and so on. Coherent beam combining (CBC) of femtosecond fiber lasers serves as an effective technical approach to overcome the power limitations of single fibers and achieve high-power femtosecond laser output.
    Purpose This work aims to develop a high-power femtosecond fiber laser CBC system to achieve kilowatt-level average power output with high stability.
    Methods The presented femtosecond fiber laser CBC system is based on a three-channel all-fiber chirped pulse amplifier. Phase adjustment and stable coherent combining of the three laser amplifiers are achieved using fiber stretchers in combination with the stochastic parallel gradient descent (SPGD) algorithm.
    Results At a total output power of 1219.1 W, the system delivers a combined power of 1072 W, corresponding to a combining efficiency of 87%. The combined beam exhibits near-diffraction-limited beam quality (M2=1.23), and the compressed pulse width is 899 fs. Furthermore, the influence of beam quality degradation on the combining efficiency is theoretically analyzed. The results show that the combining efficiency would decrease as the beam quality degradation rate increased, and the combining efficiency is more sensitive to the degradation of multi-channel beam quality.
    Conclusions The demonstrated all-fiber coherent beam combining system exhibits excellent stability and high-power output. Further power scaling can be realized by increasing the number of combining channels, thereby providing crucial technical support for the advanced applications of high flux ultrafast and ultra-intense lasers.

     

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