论文标题

结合量子降噪资源:一种实用的方法

Combining quantum noise reduction resources: a practical approach

论文作者

Ghosh, Sohitri, Feldman, Matthew A., Hong, Seongjin, Marvinney, Claire E., Marino, Alberto M., Pooser, Raphael C., Taylor, Jacob M.

论文摘要

光力传感器能够将外部扰动转换为可分离的光信号。一个特定的感兴趣制度是高带宽力检测,在短时间内将冲动传递到系统。已经提出了非常敏感的冲动检测,以观察到非常弱的信号,例如与暗物质相互作用的远距离相互作用,而这些信号需要比当前传感器所能提供的更高的敏感性。量子资源超出了这些传统传感器的传统标准量子极限,包括挤压用于传递信号的光,通过测量最佳正交和量子非降解(QND)测量,以直接降低反作用的光线来逃避反作用。这些方法已经在音频频段范围内的目标频率的重力波检测的背景下开发。在这里,我们为较高和更广泛的频率目标(例如来自暗物质信号的目标)提供了降低量子噪声的限制,同时将基于挤压光和QND测量的量子增强的读出技术与光机械传感器结合在一起。我们证明,通过QND技术逃避弹性,大大降低了使用挤压光进行宽带力检测的技术挑战,这为在IMPULSE Metrologrogy的背景下,为增强灵敏度的多种量子降噪技术铺平了道路。

Optomechanical sensors are capable of transducing external perturbations to resolvable optical signals. A particular regime of interest is that of high-bandwidth force detection, where an impulse is delivered to the system over a short period of time. Exceedingly sensitive impulse detection has been proposed to observe very weak signals like those due to long range interactions with dark matter that require much higher sensitivities than current sensors can provide. Quantum resources to go beyond the traditional standard quantum limit of these sensors include squeezing of the light used to transduce the signal, backaction evasion by measuring the optimal quadrature, and quantum non-demolition (QND) measurements that reduce backaction directly. These methods have been developed in the context of gravitational wave detection for target frequencies in the audio band range. Here, we provide the theoretical limits to quantum noise reduction for higher and broader frequency targets, such as those from dark matter signals, while combining quantum enhanced readout techniques based on squeezed light and QND measurements with optomechanical sensors. We demonstrate that backaction evasion through QND techniques dramatically reduces the technical challenges presented when using squeezed light for broadband force detection, paving the way for combining multiple quantum noise reduction techniques for enhanced sensitivity in the context of impulse metrology.

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