Zhao Yun, Okawachi Yoshitomo, Jang Jae K, Ji Xingchen, Lipson Michal, Gaeta Alexander L
Department of Electrical Engineering, Columbia University, New York, New York 10027, USA.
Department of Applied Physics and Applied Mathematics, Columbia University, New York, New York 10027, USA.
Phys Rev Lett. 2020 May 15;124(19):193601. doi: 10.1103/PhysRevLett.124.193601.
Squeezed states are a primary resource for continuous-variable (CV) quantum information processing. To implement CV protocols in a scalable and robust way, it is desirable to generate and manipulate squeezed states using an integrated photonics platform. In this Letter, we demonstrate the generation of quadrature-phase squeezed states in the radio-frequency carrier sideband using a small-footprint silicon-nitride microresonator with a dual-pumped four-wave-mixing process. We record a squeezed noise level of 1.34 dB (±0.16 dB) below the photocurrent shot noise, which corresponds to 3.09 dB (±0.49 dB) of quadrature squeezing on chip. We also show that it is critical to account for the nonlinear behavior of the pump fields to properly predict the squeezing that can be generated in this system. This technology represents a significant step toward creating and manipulating large-scale CV cluster states that can be used for quantum information applications, including universal quantum computing.
压缩态是连续变量(CV)量子信息处理的主要资源。为了以可扩展且稳健的方式实现CV协议,期望使用集成光子平台来生成和操控压缩态。在本信函中,我们展示了利用具有双泵浦四波混频过程的小尺寸氮化硅微谐振器,在射频载波边带中生成正交相位压缩态。我们记录到低于光电流散粒噪声1.34 dB(±0.16 dB)的压缩噪声水平,这对应于芯片上3.09 dB(±0.49 dB)的正交压缩。我们还表明,考虑泵浦场的非线性行为对于正确预测该系统中可产生的压缩至关重要。这项技术朝着创建和操控可用于量子信息应用(包括通用量子计算)的大规模CV簇态迈出了重要一步。