论文标题
在重力波频率处的振幅滤光片的演示
Demonstration of an amplitude filter cavity at gravitational-wave frequencies
论文作者
论文摘要
量子真空波动从根本上限制了光学测量的精度,例如重力波检测器中的光学测量值。传统挤压真空的注入可用于降低读数正交中的量子噪声,但这种减少的代价是正交正交中噪声增加的成本。对于量子辐射压力噪声(QRPN)附近的探测器,两个四二氮都会影响测量,并且常规挤压的益处受到限制。在本文中,我们证明了使用批判性耦合的16m光腔的使用来减少在90Hz以下的频率下降低抗扩孔的情况,在该频率上,它加剧了QRPN,同时保留在较高频率下的有益质量。这称为振幅滤波器腔,可用于避免在低频下检测器灵敏度降解。腔体的衰减还提供了技术优势,例如减轻反向散射。
Quantum vacuum fluctuations fundamentally limit the precision of optical measurements, such as those in gravitational-wave detectors. Injection of conventional squeezed vacuum can be used to reduce quantum noise in the readout quadrature, but this reduction is at the cost of increasing noise in the orthogonal quadrature. For detectors near the limits imposed by quantum radiation pressure noise (QRPN), both quadratures impact the measurement, and the benefits of conventional squeezing are limited. In this paper, we demonstrate the use of a critically-coupled 16m optical cavity to diminish anti-squeezing at frequencies below 90Hz where it exacerbates QRPN, while preserving beneficial squeezing at higher frequencies. This is called an amplitude filter cavity, and it is useful for avoiding degradation of detector sensitivity at low frequencies. The attenuation from the cavity also provides technical advantages such as mitigating backscatter.