Hoff Ulrich B, Nielsen Bo M, Andersen Ulrik L
Opt Express. 2015 May 4;23(9):12013-36. doi: 10.1364/OE.23.012013.
An integrated silicon nitride resonator is proposed as an ultra-compact source of bright single-mode quadrature squeezed light at 850 nm. Optical properties of the device are investigated and tailored through numerical simulations, with particular attention paid to loss associated with interfacing the device. An asymmetric double layer stack waveguide geometry with inverse vertical tapers is proposed for efficient and robust fibre-chip coupling, yielding a simulated total loss of -0.75 dB/facet. We assess the feasibility of the device through a full quantum noise analysis and derive the output squeezing spectrum for intra-cavity pump self-phase modulation. Subject to standard material loss and detection efficiencies, we find that the device holds promises for generating substantial quantum noise squeezing over a bandwidth exceeding 1 GHz. In the low-propagation loss regime, approximately -6 dB squeezing is predicted for a pump power of only 75 mW.
提出了一种集成氮化硅谐振器,作为一种超紧凑的850纳米明亮单模正交压缩光光源。通过数值模拟研究并调整了该器件的光学特性,特别关注了与器件接口相关的损耗。提出了一种具有反向垂直锥形的非对称双层堆叠波导结构,用于高效且稳健的光纤-芯片耦合,模拟得到的总损耗为-0.75 dB/面。我们通过全面的量子噪声分析评估了该器件的可行性,并推导了腔内泵浦自相位调制的输出压缩谱。在标准材料损耗和探测效率条件下,我们发现该器件有望在超过1 GHz的带宽上产生显著的量子噪声压缩。在低传播损耗 regime下,仅75 mW的泵浦功率预计可实现约-6 dB的压缩。