论文标题

通过对滤波器长度,对齐和入射光指向的双重控制,提高频率依赖挤压的稳定性

Improving the stability of frequency dependent squeezing with bichromatic control of filter cavity length, alignment and incident beam pointing

论文作者

Zhao, Yuhang, Capocasa, Eleonora, Eisenmann, Marc, Aritomi, Naoki, Page, Michael, Guo, Yuefan, Polini, Eleonora, Arai, Koji, Aso, Yoichi, van Beuzekom, Martin, Huang, Yao-Chin, Lee, Ray-Kuang, Lück, Harald, Miyakawa, Osamu, Prat, Pierre, Shoda, Ayaka, Tacca, Matteo, Takahashi, Ryutaro, Vahlbruch, Henning, Vardaro, Marco, Wu, Chien-Ming, Leonardi, Matteo, Barsuglia, Matteo, Flaminio, Raffaele

论文摘要

频率依赖性挤压是在即将到来的重力波检测器观察运行中实现宽带量子噪声降低的主要升级。挤压正交的适当频率依赖性是通过反射从其一半线宽的一半的Fabry-Perot滤波器腔中挤压真空来获得的。但是,由于挤压的真空不包含经典的幅度,因此需要共同传输辅助控制束才能实现滤波器的长度,对齐和入射光束指向稳定性。在我们在日本国家天文天文台的频率依赖性挤压实验中,我们在挤压真空波长的谐波上使用了一个对照光束,发现与悬浮镜的角度漂移相关的可见令人衰弱的变化。这些变化会降低干涉仪量子降低。我们研究了各种可能导致滤波器腔引起差异变化的机制。通过固定入射光束指向并施加滤波器自动对齐方式,发现引起的漂移可以充分缓解。还发现,横梁在滤光片镜上存在最佳位置,有助于减少引起的波动。在这里,我们报告的稳定过滤器腔引导变化小于10 $ \,$ hz,而113 $ \,$ Hz腔线宽度。与先前发表的结果相比[物理学。莱特牧师。 124,171101(2020)],这种引人注目的稳定性足以使滤腔不谐振诱导的引力波检测器检测范围的波动从$ 11 \%$降低到$ 2 \%$ $。

Frequency dependent squeezing is the main upgrade for achieving broadband quantum noise reduction in upcoming observation runs of gravitational wave detectors. The proper frequency dependence of the squeezed quadrature is obtained by reflecting squeezed vacuum from a Fabry-Perot filter cavity detuned by half of its linewidth. However, since the squeezed vacuum contains no classical amplitude, co-propagating auxiliary control beams are required to achieve the filter cavity's length, alignment, and incident beam pointing stability. In our frequency dependent squeezing experiment at the National Astronomical Observatory of Japan, we used a control beam at a harmonic of squeezed vacuum wavelength and found visible detuning variation related to the suspended mirrors angular drift. These variations can degrade interferometer quantum noise reduction. We investigated various mechanisms that can cause the filter cavity detuning variation. The detuning drift is found to be mitigated sufficiently by fixing the incident beam pointing and applying filter cavity automatic alignment. It was also found that there is an optimal position of the beam on the filter cavity mirror that helps to reduce the detuning fluctuations. Here we report a stabilized filter cavity detuning variation of less than 10$\,$Hz compared to the 113$\,$Hz cavity linewidth. Compared to previously published results [Phys. Rev. Lett. 124, 171101 (2020)], such detuning stability would be sufficient to make filter cavity detuning drift induced gravitational wave detector detection range fluctuation reduce from $11\%$ to within $2\%$.

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