Opt Lett. 2019 Nov 1;44(21):5386-5389. doi: 10.1364/OL.44.005386.
We demonstrate phase control for vacuum-squeezed light at a 2 μm wavelength, which is a necessary technology for proposed future gravitational wave observatories. The control scheme allowed examination of noise behavior at frequencies below 1 kHz and indicated that squeezing below this frequency was limited by dark noise and scattered light. We directly measure 3.9±0.2 dB of squeezing from 2 kHz to 80 kHz and 14.2±0.3 dB of antisqueezing relative to the shot noise level. The observed maximum level of squeezing is currently limited by photodetector quantum efficiency and laser instabilities at this new wavelength for squeezed light. Accounting for all losses, we conclude the generation of 11.3 dB of squeezing at the optical parametric oscillator.
我们展示了 2μm 波长真空压缩光的相位控制,这是未来引力波天文台的必要技术。该控制方案允许在低于 1kHz 的频率下检查噪声行为,并表明低于该频率的压缩受到暗噪声和散射光的限制。我们直接测量了从 2kHz 到 80kHz 的 3.9±0.2dB 的压缩和相对于散粒噪声水平的 14.2±0.3dB 的反压缩。在这个新的压缩光波长,观察到的最大压缩水平目前受到光探测器量子效率和激光不稳定性的限制。考虑到所有损耗,我们得出在光参量振荡器中产生 11.3dB 压缩的结论。