论文标题
腔电磁学中的单一量子磁力测定法
Single-quadrature quantum magnetometry in cavity electromagnonics
论文作者
论文摘要
提出了通过磁性偶极子通过磁性偶极子相互作用耦合到岩石内微波模式的腔内微波模式中的超敏感磁力计方案。结果表明,通过使用具有外部经典字段的宏伟岩和微波模式并控制系统参数,可以将磁场测量的附加噪声降低到标准量子限制以下(SQL)以下。令人惊讶的是,我们表明,超出旋转波近似(RWA),不仅可以抑制添加的噪声,而且还可以大大扩增对输入信号的输出腔响应,以实现精确的磁场测量。所提出的磁化放大器传感器的估计理论敏感性大约为$ 10^{ - 18} t/\ sqrt {Hz} $,与当前的最新磁力计相比,它具有竞争力,例如超导量子级式介入设备(squids)和Atomic Magnetemeters。与其他磁力计相比,提出的传感器的优点是在室温下其高灵敏度,并在频率范围内传感高达MHz,以及其信号响应放大的能力。
A scheme of an ultra-sensitive magnetometer in the cavity quantum electromagnonics where the intracavity microwave mode coupled to a magnonic mode via magnetic dipole interaction is proposed. It is shown that by driving both magnonic and microwave modes with external classical fields and controlling the system parameters, one can reduce the added noise of magnetic field measurement below the standard quantum limit (SQL). Surprisingly, we show that beyond the rotating wave approximation (RWA), not only the added noise can be suppressed, but also the output cavity response to the input signal can be substantially amplified in order to achieve a precise magnetic-field measurement. The estimated theoretical sensitivity of the proposed magnetic amplifier-sensor is approximately in the order of $10^{-18}T/\sqrt{Hz}$ which is competitive compared to the current state-of-the-art magnetometers like superconducting quantum interference devices (SQUIDs) and atomic magnetometers. The advantage of the proposed sensor in comparison with the other magnetometers is its high sensitivity at room temperature and sensing in a wide range of frequency up to MHz as well as its capability to signal-response amplification.