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Experimental and theoretical analysis of Dy3+-doped fiber lasers for efficient yellow emission

机译:DY3 +掺杂纤维激光器的实验与理论分析,用于高效的黄色发射

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摘要

We report a detailed experimental and theoretical analysis of the F-4(9/2) to H-6(13/2) lasing transition of a dysprosium (Dy3+)-doped ZBLAN fiber, a strong candidate for future compact and highly efficient yellow laser emission. Experimentally, we used a gallium nitride laser diode emitting at 447 nm as a pump source and measured yellow laser output generated with a maximum slope efficiency of 33%, which is less than half of the Stokes limit (of similar to 78%). This result is commensurate with two other reports of yellow emission from Dy3+. As a result, we developed a numerical model to understand and analyze the improvement potential of this fiber laser system. For reliable spectroscopic data input to the numerical model, we measured the absorption and emission cross sections from Dy3+-doped ZBLAN glass. We investigated the potential causes of the low experimental slope efficiency and found contributions from the background loss of the fiber and excited-state absorption (ESA) of the intracavity yellow light. We estimated the signal re-absorption cross section using the emission cross section and the McCumber relation, which was subsequently used in our numerical model to compare successfully with our experimental results. We show that the ESA can be reduced for future Dy3+-doped yellow laser systems by cascade lasing or co-doping with a suitable rare earth ion desensitizer. (C) 2021 Optical Society of America
机译:我们对掺镝(Dy3+)的ZBLAN光纤的F-4(9/2)到H-6(13/2)激光跃迁进行了详细的实验和理论分析,这是未来紧凑高效的黄色激光发射的有力候选。在实验上,我们使用在447 nm处发射的氮化镓激光二极管作为泵浦源,测量了产生的黄色激光输出,其最大斜率效率为33%,小于斯托克斯极限的一半(类似于78%)。这一结果与另外两份有关Dy3+黄色排放的报告相当。因此,我们开发了一个数值模型来理解和分析这种光纤激光器系统的改进潜力。为了向数值模型输入可靠的光谱数据,我们测量了掺Dy3+的ZBLAN玻璃的吸收和发射截面。我们研究了实验斜率效率低的潜在原因,发现了光纤的背景损耗和腔内黄光的激发态吸收(ESA)的贡献。我们使用发射截面和McCumber关系估计了信号再吸收截面,随后将其用于我们的数值模型中,以成功地与我们的实验结果进行比较。我们表明,在未来的掺Dy3+黄激光系统中,通过级联激光或与合适的稀土离子脱敏剂共掺杂,可以降低ESA。(2021)美国光学学会

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  • 来源
    《Applied optics》 |2021年第16期|共9页
  • 作者单位

    Macquarie Univ Sch Engn MQ Photon Macquarie NSW 2109 Australia;

    Macquarie Univ Sch Engn MQ Photon Macquarie NSW 2109 Australia;

    Macquarie Univ Sch Engn MQ Photon Macquarie NSW 2109 Australia;

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  • 正文语种 eng
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