论文标题
量子干涉仪结合挤压和参数扩增
Quantum interferometer combining squeezing and parametric amplification
论文作者
论文摘要
高精度干涉仪是精度计量学的构件,最终的干涉灵敏度受量子噪声的限制。在这里,我们提出并在实验上证明了一个紧凑型量子干涉仪,涉及两个光学参数放大器和干涉仪内生成的挤压状态直接用于相位感应量子状态。通过挤压射击噪声和扩增相位感应强度,超出标准量子极限以外的$ 4.86 \ pm 0.24 $ dB的灵敏度提高是确定性实现的,并且在同一相位强度下的所有当前干涉仪的最小可检测相比所有当前干涉仪的最小可检测到相位。该干涉系统在各种物理量方差的各种测量中具有显着的潜在应用。
High precision interferometers are the building blocks of precision metrology and the ultimate interferometric sensitivity is limited by the quantum noise. Here we propose and experimentally demonstrate a compact quantum interferometer involving two optical parametric amplifiers and the squeezed states generated within the interferometer are directly used for the phase-sensing quantum state. By both squeezing shot noise and amplifying phase-sensing intensity the sensitivity improvement of $4.86\pm 0.24$ dB beyond the standard quantum limit is deterministically realized and a minimum detectable phase smaller than that of all present interferometers under the same phase-sensing intensity is achieved. This interferometric system has significantly potential applications in a variety of measurements for tiny variances of physical quantities.