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Thermooptics of magnetoactive media: Faraday isolators for high average power lasers

机译:磁活性介质的热光:用于高平均功率激光器的法拉第隔离器

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The Faraday isolator, one of the key high-power laser elements, provides optical isolation between a master oscillator and a power amplifier or between a laser and its target, for example, a gravitational wave detector interferometer. However, the absorbed radiation inevitably heats the magnetoactive medium and leads to thermally induced polarization and phase distortions in the laser beam. This self-action process limits the use of Faraday isolators in high average power lasers. A unique property of magnetoactive medium thermooptics is that parasitic thermal effects arise on the background of circular birefringence rather than in an isotropic medium. Also, even insignificant polarization distortions of the radiation result in a worse isolation ratio, which is the key characteristic of the Faraday isolator. All possible laser beam distortions are analyzed for their deteriorating effect on the Faraday isolator parameters. The mechanisms responsible for and key physical parameters associated with different kinds of distortions are identified and discussed. Methods for compensating and suppressing parasitic thermal effects are described in detail, the published experimental data are systematized, and avenues for further research are discussed based on the results achieved.
机译:法拉第隔离器是关键的高功率激光元件之一,可在主振荡器与功率放大器之间或激光器与目标(例如重力波检测器干涉仪)之间提供光学隔离。然而,吸收的辐射不可避免地加热了磁活性介质,并导致了激光束中的热感应偏振和相位畸变。这种自作用过程限制了法拉第隔离器在高平均功率激光器中的使用。磁活性介质热光学的独特特性是,寄生热效应是在圆双折射的背景下而不是在各向同性介质中产生的。同样,即使辐射的偏振畸变很小,隔离率也会变差,这是法拉第隔离器的关键特性。分析所有可能的激光束畸变对法拉第隔离器参数的恶化影响。识别和讨论了负责与不同类型的失真相关的机制以及关键的物理参数。详细介绍了补偿和抑制寄生热效应的方法,对已发表的实验数据进行了系统化,并根据获得的结果讨论了进一步研究的途径。

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