论文标题
互相关杂项检测的量子理论
Quantum theory of cross-correlation heterodyne detection
论文作者
论文摘要
互相关的杂化检测器表现出抑制检测量子噪声下方射击噪声的潜力,而无需使用光学挤压来捕获低频带中的弱光学信号。为了理解潜在的机制,我们开发了一种量子理论来描述互相关杂化检测器的噪声性能。通过计算来自互相关杂项检测器的光电流波动的跨光谱密度(CSD),我们证明其噪声性能可以破坏射击噪声限制,并超过常规杂质检测器的噪声性能,以检测相干光。当检测到的光信号处于挤压状态时,我们表明相应的CSD值为负,并讨论如何探索负CSD,以通过调谐挤压程度的经典噪声参数来提高被经典噪声污染的检测器的输出信号 - 噪声比。这项工作可能会发现自己在空间的重力搜索和其他各种科学研究活动中有用,例如对真空磁性双折射和电信的观察。
Cross-correlation heterodyne detectors exhibit the potential for suppression of the detection quantum noise below shot noise without use of optical squeezing for capturing weak optical signals in low frequency bands. To understand the underlying mechanism, we develop a quantum theory to describe the noise performance of cross-correlation heterodyne detectors. By calculating the cross spectral density (CSD) of the photocurrent fluctuations from a cross-correlation heterodyne detector, we prove that its noise performance can break the shot noise limit and exceed that of a regular heterodyne detector for detection of coherent light. When the detected light signal is in a squeezed state, we show that the corresponding CSD value is negative and discuss how a negative CSD may be explored to improve the output signal-to-noise ratio of the detector contaminated by classical noises through tuning the parameter of the degree of squeezing. This work may find itself useful in space-based gravitational wave searching and a variety of other scientific research activities, such as observation of vacuum magnetic birefringence and telecommunications.