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The reflective properties of a volume Bragg grating exposed to a high power laser beam

机译:暴露于高功率激光束的体积布拉格光栅的反射特性

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The material in which a volume Bragg grating is made will always have some absorption at the grating's design wavelength. Thus, when exposed to a high power laser beam the grating will absorb some power, be heated such that a temperature gradient is formed and, consequently, become distorted. We developed an accurate model to calculate the reflection of a high power laser beam by a volume Bragg grating that experiences such distortion. We used the beam propagation method (BPM) to calculate the laser beam propagation in the grating numerically, and the BPM calculations are iterated to account for the counter propagation of the laser beam in the volume Bragg grating. We devised a new method to assure convergence in the iteration of the BPM calculations when the grating diffraction strength is very large. We also established a new formulation of the wave equation to include the grating period distortion in the BPM formulation. The surface distortion and temperature induced background index change are also included in the model. This model has been validated to be correct and very accurate. We applied it to calculate the reflection of a high power laser beam by a distorted volume Bragg grating which has large diffraction strength. Our calculation shows that a small amount of grating structure distortion could introduce significant changes of both the phase and intensity patterns of the reflected laser beam. Understanding such changes is critical to the application of volume Bragg grating to high power laser systems.
机译:制作体积布拉格光栅的材料始终在光栅的设计波长处具有一些吸收。因此,当暴露于高功率激光束时,光栅将吸收一些功率,被加热,使得温度梯度形成并且因此变得扭曲。我们开发了一种准确的模型来计算高功率激光束的卷Bragg光栅的反射,其经历这种失真。我们使用光束传播方法(BPM)来数值计算光栅中的激光束传播,并且迭代BPM计算以解释激光束在卷布拉格光栅中的反向传播。我们设计了一种新方法,以确保在光栅衍射强度非常大的情况下进行BPM计算的迭代中的收敛。我们还建立了波动方程的新配方,以包括BPM制剂中的光栅周期变形。表面失真和温度诱导的背景指数变化也包括在模型中。该模型已被验证是正确的,非常准确。我们将其应用于通过具有大的衍射强度的扭转体积布拉格光栅来计算高功率激光束的反射。我们的计算表明,少量光栅结构变形可以引入反射激光束的相位和强度图案的显着变化。了解此类更改对于卷Bragg光栅应用于高功率激光系统至关重要。

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