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The detection of gravitational waves: the contribution of the Applied Physics Institute, Russian Academy of Sciences

机译:引力波的探测:俄罗斯科学院应用物理研究所的贡献

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September 14, 2015 marked the day that the LIGO collaboration recorded a gravitational-wave signal arriving from the merger of two black holes that occurred 1.3 billion years ago. The LIGO detector is based on a Michelson interferometer with an arm length of 4 km. The achieved sensitivity makes it possible to detect a change of the arm length smaller than 10(-19) meter. We discuss the physical problems that were solved in order to achieve this unprecedented sensitivity. The most essential contribution of the Applied Physics Institute, Russian Academy of Sciences, to the LIGO detector is the invention of unique Faraday isolators that operate with high laser radiation power. The absorption of radiation in a magneto-active medium unavoidably causes it to heat up and thermally induces polarization and phase distortion of the laser beam. This article presents an analysis of all the distortions of the laser beam from the viewpoint of the degradation of the parameters of the isolator. The mechanisms and key physical quantities responsible for the various forms of the distortions have been determined. The existing methods of compensating and suppressing parasitic thermal effects are described in detail. (C) 2017 Optical Society of America
机译:2015 年 9 月 14 日,LIGO合作记录了13亿年前发生的两个黑洞合并产生的引力波信号。LIGO探测器基于臂长为4公里的迈克尔逊干涉仪。所达到的灵敏度使得可以检测到小于 10(-19) 米的臂长变化。我们讨论了为了实现这种前所未有的灵敏度而解决的物理问题。俄罗斯科学院应用物理研究所对LIGO探测器最重要的贡献是发明了独特的法拉第隔离器,该隔离器在高激光辐射功率下工作。磁活性介质中辐射的吸收不可避免地导致其升温,并在热上引起激光束的偏振和相位畸变。本文从隔离器参数退化的角度分析了激光束的所有失真。造成各种形式扭曲的机制和关键物理量已经确定。详细介绍了现有的补偿和抑制寄生热效应的方法。(C) 2017年美国光学学会

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