Nd, Gd: SrF< sub> 2 & lt; / sub>宽带激光放大中的晶体光谱增益特性

Dong-Bin Jiang, Ying Zhang, Da-Peng Jiang, Bin Zhu, Gang Li, Li Sun, Zheng Huang, Feng Lu, Na Xie, Kai-Nan Zhou, Jing-Qin Su
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摘要

频谱增益窄化是影响超短脉冲宽带放大的关键因素之一。本文利用Nd,Gd:SrF<sub>2</sub>晶体,即在较高受激发射截面处具有一定宽度的发射光谱。通过数值模拟,详细研究了不同光谱增益线形和不同增益值下激光增益介质输出光谱的演化规律。理论计算表明,随着传统高斯发射光谱增益值的增大,光谱增益明显收窄,增大最大受激发射截面处的光谱带宽可以明显抑制光谱增益的收窄。此外,Nd、Gd:SrF<sub>2</sub>对晶体进行了实验研究。& lt; i>Ф& lt; / i>13 mm×150 mm Nd,Gd:SrF<sub>2</sub>在实验研究中,采用晶体作为增益介质,由闪光灯抽运。实验结果表明,Nd,Gd:SrF<sub>2</sub>当输入激光光谱宽度的半宽全宽度为5 nm,增益为140倍时,晶体不会明显变窄。实验结果与理论计算分析相吻合。实验中晶体在0.2 Hz和1.0 Hz的重复频率下可以正常工作,但由于热效应的影响,随着泵浦能量和重复频率的增加,增益会有一定程度的降低。研究结果为氟化物晶体在宽带啁啾脉冲放大中的应用奠定了基础。
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Nd, Gd:SrF<sub>2</sub> crystal spectrum gain characteristic in broadband laser amplification
Spectral gain narrowing is one of the key factors affecting broadband amplification of ultrashort pulses. In this paper, the spectral gain characteristics in broadband amplification are studied theoretically and experimentally by using the characteristic of Nd,Gd:SrF2 crystal, i.e. the emission spectrum that has a certain width at the higher stimulated emission cross section. Through the numerical simulation, the evolution law of output spectrum of the laser gain medium under different spectral gain lineshapes and different gain values is studied in detail. Theoretical calculation shows that the spectral gain is narrowed obviously with the increase of gain value of the traditional Gaussian emission spectrum, and that increasing the spectral bandwidth at the maximum stimulated emission cross section can obviously suppress the spectral gain narrowing. Furthermore, the spectral gain narrowing characteristics of the Nd,Gd:SrF2 crystal are studied experimentally. A Ф 13 mm×150 mm Nd,Gd:SrF2 crystal is used as the gain medium which is pumped by flash lamps in the experimental study. The experimental results show that the output spectra of Nd,Gd:SrF2 crystals are not obviously narrowed when the full width at half maximum (FWHM) of spectral width of the input laser is 5 nm and the gain is 140 times. The experimental results are consistent with the theoretical calculation and analysis. The crystal can work normally at a repetition rate of 0.2 Hz and 1.0 Hz in the experiment, but due to the influence of thermal effect, the gain will decrease to a certain extent with the increase of pump energy and repetition rate. The research results lay the foundation for the application of fluoride crystal in broadband chirped pulse amplification.
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