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Effects of mode degeneracy in the LIGO livingston observatory recycling cavity

机译:LIGO利文斯顿天文台回收腔中模式退化的影响

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We analyze the electromagnetic fields in a Pound-Drever-Hall locked, marginally unstable, Fabry-Perot cavity as a function of small changes in the cavity length during resonance. More specifically, we compare the results of a detailed numerical model with the behavior of the recycling cavity of the Laser Interferometer Gravitational-wave Observatory (LIGO) detector located in Livingston, Louisiana. In the interferometer's normal mode of operation, the recycling cavity is stabilized by inducing a thermal lens in the cavity mirrors with an external CO2 laser. During our study, this thermal compensation system was not operating, causing the cavity to be marginally optically unstable and cavity modes to become degenerate. In contrast to stable optical cavities, the modal content of the resonating beam in the uncompensated recycling cavity is significantly altered by very small cavity length changes. This modifies the error signals used to control the cavity length in such a way that the zero crossing point is no longer the point of maximum power in the cavity, nor is it the point where the input-beam mode in the cavity is maximized. (c) 2007 Optical Society of America.
机译:我们分析了共振期间谐振腔长度的微小变化,将Pound-Drever-Hall锁定,略微不稳定的Fabry-Perot谐振腔中的电磁场进行了分析。更具体地说,我们将详细数值模型的结果与位于路易斯安那州利文斯顿的激光干涉仪引力波天文台(LIGO)检测器的循环腔的行为进行了比较。在干涉仪的正常工作模式下,通过使用外部CO2激光器在腔镜中感应出一个热透镜来稳定循环腔。在我们的研究过程中,该热补偿系统没有运行,导致腔体在光学上有些不稳定,并且腔体模态退化。与稳定的光学腔相反,未补偿的回收腔中共振光束的模态含量会因腔长度的很小变化而显着改变。这修改了用于控制腔体长度的误差信号,使得零交叉点不再是腔体中最大功率的点,也不是腔体中输入光束模式最大化的点。 (c)2007年美国眼镜学会。

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