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Optical feedback effects on microchip laser dynamics used for determining the characteristics of the materials

机译:用于测定材料特性的微芯片激光动力学的光学反馈效果

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In this paper we investigate experimentally the dynamical response of a class B microchip laser submitted to optical feedback. Based on the theoretical model for a laser with optical feedback, we demonstrate how the effects of the optical reinjection of the laser beam reflected by an object situated in front on the laser can be used in determining the characteristics of the object (reflectivity and distance to the laser). In this purpose we have constructed a laser system, which we further use in an optical feedback experimental setup. The laser we use in our experiment is a class B Nd:YAG microchip laser, which has a damping rate of the laser cavityγ_cmuch higer than the damping rate of the population inversionγ_1. The laser has a cavity length L=0.8mm, operating at λ =1,064μm . In order to obtain the laser emission, the active medium is pumped by a system of laser diodes emitting at 810nm. This type of laser has the relaxation oscillations at a characteristic frequency, named relaxation frequency. For the maximum pump parameter η≈ 6 the maximum output power of the laser is P_(out)≈130mW and the relaxationfrequency f_r ≈ 1MHz. The value obtained for γ_c/γ_1≈1,7X10~6 1 proves that our laser is a class B laser and also that it can be successfully utilized for optical reinjection. Based on this laser system, we develop a method for exploiting the sensivity of the Nd:YAG laser to the optical reinjection. We demonstrate that the optical feedback modifies the steady state of the laser and changes the laser characteristics. This method is based on the high sensitivity of this type of laser to the optical reinjection. In order to analyse the effects of the optical feedback on the laser behaviour, we placed an object at the distance d in front of the laser and the retro reflected beam was reinjected into the laser cavity. We use a beam splitter to send a small fraction of the laser beam to a photodiode. The signal provided by this photodetector is sent to an oscilloscope, where we observe the signal and the power spectrum of the laser. Our experimental results show that the optical feedback modifies the laser characteristics. We observe that the optical feedback induces a significant amplification of the laser signal and also a deplacement of the relaxation frequency to smaller values. Our experimental results are in good agreement with the mathematical model. By introducing the reinjected electric field into the equations for the dynamical behavior of a class B laser, it can be shown that the reinjection of a wave with the same pulsation as the laser beam determines a changement of the steady state values for the population inversion, for the electric field and also for the optical frequency of the laser. Based on the the equations for laser intensity and for the relaxation pulsation in the presence of the optical feedback, we determine experimentally the reflectivity of the object and the distance between laser and object. We conclude that the class B lasers present a high sensitivity to the optical feedback, which induces the change of the steady state of the laser. This modifications can be succesfully used for determining the characteristics of differents objects submitted to laser irradiation.
机译:在本文中,我们通过实验调查了提交到光反馈的B类微芯片激光器的动态响应。基于具有光学反馈的激光的理论模型,我们证明了在确定对象前面的物体上反射的光学反射的光学反射的效果如何用于确定物体的特性(反射率和距离激光)。为此,我们已经构建了一种激光系统,我们进一步用于光学反馈实验设置。我们在我们的实验中使用的激光是B类Nd:YAG微芯片激光器,其具有激光腔γ_cmuchHiger的阻尼速率而不是群体反转γ_1的阻尼速率。激光具有腔长L = 0.8mm,在λ=1,064μm处工作。为了获得激光发射,通过在810nm处发射的激光二极管系统泵浦活性介质。这种类型的激光在特征频率下具有弛豫振荡,命名松弛频率。对于最大泵参数η≈6激光的最大输出功率是p_(out)≈130mw和弛豫频率f_r≈1MHz。获得γ_C/γ_1≈1,7X10〜6 1所获得的值证明了我们的激光器是B类激光器,也可以成功地用于光学再注。基于该激光系统,我们开发了一种利用ND:YAG激光到光学再注的方法的方法。我们证明光学反馈改变了激光的稳定状态并改变激光特性。该方法基于这种类型的激光到光学再注的高灵敏度。为了分析对激光行为的光反馈的影响,我们将物体放置在激光前面的距离D处,并且将复古反射光束加入激光腔中。我们使用分束器将小部分激光束发送到光电二极管。由该光电检测器提供的信号被发送到示波器,在那里我们观察激光的信号和功率谱。我们的实验结果表明,光学反馈改变了激光特性。我们观察到光反馈引起激光信号的显着放大以及弛豫频率的拆卸到较小的值。我们的实验结果与数学模型吻合良好。通过将重新的电场引入到B类激光器的动态行为中的方程中,可以示出,随着激光束的与激光束的相同脉动的波形决定了群体反转的稳态值的变换,对于电场,也用于激光的光学频率。基于激光强度的方程和在光反馈的存在下的弛豫脉动的基础上,我们确定了物体的反射率和激光物体之间的距离。我们得出结论,B类激光器对光学反馈具有高灵敏度,这引起了激光稳定状态的变化。该修改可以成功地用于确定提交给激光辐射的不同物体的特性。

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