论文标题
频率依赖性挤压液
Frequency-Dependent Squeezing for Advanced LIGO
论文作者
论文摘要
2015年激光干涉仪重力波观测站(Ligo)对引力波的首次检测引发了引力波天文学的时代。从虚弱或较远的物体中寻求引力波信号,促使技术进步实现越来越敏感的探测器。自2019年以来,一种先进的技术,使用挤压状态的注射量用于提高射击噪声限制对高级LIGO探测器的灵敏度的限制,以高于$ \ sim 50 $ Hz的频率。低于此频率,以辐射压力引起的镜子运动形式的量子背部动作降低了灵敏度。要同时在高频下降低射击噪声和低频下的量子辐射压力噪声,需要具有低光损耗的量子噪声过滤器腔,以随着频率的函数旋转挤压正交正常。我们使用16m长的滤波器进行了旋转频率的观察,旋转频率为30Hz的频率挤压正交旋转。为这种频率依赖的挤压真空源开发了一种新颖的控制方案,此处介绍的结果表明,低损坏的滤波器可以实现下一个计划的升级到晚期ligo所需的挤压正交旋转,称为“ A+”。
The first detection of gravitational waves by the Laser Interferometer Gravitational-wave Observatory (LIGO) in 2015 launched the era of gravitational wave astronomy. The quest for gravitational wave signals from objects that are fainter or farther away impels technological advances to realize ever more sensitive detectors. Since 2019, one advanced technique, the injection of squeezed states of light is being used to improve the shot noise limit to the sensitivity of the Advanced LIGO detectors, at frequencies above $\sim 50$ Hz. Below this frequency, quantum back action, in the form of radiation pressure induced motion of the mirrors, degrades the sensitivity. To simultaneously reduce shot noise at high frequencies and quantum radiation pressure noise at low frequencies requires a quantum noise filter cavity with low optical losses to rotate the squeezed quadrature as a function of frequency. We report on the observation of frequency-dependent squeezed quadrature rotation with rotation frequency of 30Hz, using a 16m long filter cavity. A novel control scheme is developed for this frequency-dependent squeezed vacuum source, and the results presented here demonstrate that a low-loss filter cavity can achieve the squeezed quadrature rotation necessary for the next planned upgrade to Advanced LIGO, known as "A+."