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Effects of thermalization on Q-switched laser properties

机译:热化对调Q激光特性的影响

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The conventional rate equations for a Q-switched laser are augmented to explicitly include the effects of time- and level-dependent pumping, thermalization among the sublevels in the upper and lower multiplets, and multiplet relaxation in a homogeneously broadened four-level laser medium. To make the numerical computations more generally valid, we introduce a number of dimensionless variables. We show that the initial set of five coupled differential equations can be reduced to a simple set of two coupled equations for the inversion density and photon flux. Via numerical modeling, we have investigated the manner in which both thermalization and lower multiplet relaxation affect Nd:YAG laser characteristics such as output energy and temporal waveform. Our numerical results confirm earlier predictions that the Q-switched Nd:YAG laser output energy increases monotonically by a factor of 3.33 as one progresses from the assumption of slow to rapid thermalization and by an additional factor of 1.46 if one further assumes a terminal multiplet relaxation which is fast relative to the resonator photon decay time. We also find that the laser pulsewidth is substantially broadened when the resonator photon decay time is comparable to the thermalization, and to a lesser extent, the terminal multiplet relaxation times.
机译:Q开关激光器的常规速率方程式得到了扩展,以明确包括时间和水平依赖的泵浦效应,上下多重峰中子水平之间的热化以及在均匀扩展的四能级激光介质中的多重峰弛豫的影响。为了使数值计算更普遍有效,我们引入了许多无量纲变量。我们表明,对于反演密度和光子通量,五个耦合的微分方程的初始集合可以简化为两个耦合方程的简单集合。通过数值建模,我们研究了热化和较低的多重多重弛豫都影响Nd:YAG激光特性(例如输出能量和时间波形)的方式。我们的数值结果证实了较早的预测,即随着Q开关Nd:YAG激光器的输出能量从缓慢升温到快速热化,单调增加了3.33倍;如果进一步假设了终端多重弛豫,则增加了1.46倍。相对于谐振器的光子衰减时间快。我们还发现,当谐振器的光子衰减时间与热化时间相当时,激光脉冲宽度会大大加宽,而在终端倍数弛豫时间方面则较小。

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