论文标题
频率依赖性的挤压真空源,用于宽带量子降噪的高级引力波检测器
Frequency-Dependent Squeezed Vacuum Source for Broadband Quantum Noise Reduction in Advanced Gravitational-Wave Detectors
论文作者
论文摘要
当前和未来的地面重力波检测器的天体物理覆盖率大多受量子噪声的限制,这是由进入检测器输出端口的真空波动引起的。事实证明,用挤压真空场更换这个普通的真空场是减轻这种量子噪声的有效策略,目前在高级探测器中使用。但是,由于海森伯格的不确定性原理,当前的压缩无法改善整个光谱的噪声:当高频下的射击噪声降低时,低频下的辐射压力会增加。通过使用更复杂的挤压源,可以通过反映fabry腐烂腔(称为滤波器腔)来获得宽带量子降噪。在这里,我们报告了一个频率依赖的挤压真空源,能够在其整个观察带宽中降低高级重力波检测器的量子噪声。该实验使用了一个悬浮的300米长的滤波器,类似于计划的Kagra,高级处女座和高级Ligo,并且能够诱导100 Hz以下的挤压椭圆形的旋转。
The astrophysical reach of current and future ground-based gravitational-wave detectors is mostly limited by quantum noise, induced by vacuum fluctuations entering the detector output port. The replacement of this ordinary vacuum field with a squeezed vacuum field has proven to be an effective strategy to mitigate such quantum noise and it is currently used in advanced detectors. However, current squeezing cannot improve the noise across the whole spectrum because of the Heisenberg uncertainty principle: when shot noise at high frequencies is reduced, radiation pressure at low frequencies is increased. A broadband quantum noise reduction is possible by using a more complex squeezing source, obtained by reflecting the squeezed vacuum off a Fabry-Perot cavity, known as filter cavity. Here we report the first demonstration of a frequency-dependent squeezed vacuum source able to reduce quantum noise of advanced gravitational-wave detectors in their whole observation bandwidth. The experiment uses a suspended 300-m-long filter cavity, similar to the one planned for KAGRA, Advanced Virgo and Advanced LIGO, and capable of inducing a rotation of the squeezing ellipse below 100 Hz.