论文标题
噪声键的旋转原子状态的自旋噪声光谱法
Spin noise spectroscopy of a noise-squeezed atomic state
论文作者
论文摘要
自旋噪声光谱正在成为一种强大的技术,用于研究各种自旋系统的动力学,也超出了其热平衡和线性响应。在这里,我们研究了钟形型磁力计中室温中性原子的自旋波动。在间接泵送和受到参数激发的驱动下,该系统已知会产生噪声刺激。我们的测量值不仅揭示了在磁共振上的原子信号四元素的噪声分布中的强烈不对称性,而且还可以深入了解其产生和进化的机理。特别是,识别了频谱中的结构,该结构允许研究噪声过程的主要依赖关系和特征时间尺度。获得的结果与参数诱导的噪声挤压兼容。值得注意的是,即使在遗传宏观原子相干性的机制中,噪声谱也提供了有关自旋动力学的信息,从而有效地增强了测量的灵敏度。我们的工作促进了自旋噪声光谱作为一种多功能技术,用于研究在广泛的基于自旋的磁性传感器中挤压噪声。
Spin noise spectroscopy is emerging as a powerful technique for studying the dynamics of various spin systems also beyond their thermal equilibrium and linear response. Here, we study spin fluctuations of room-temperature neutral atoms in a Bell-Bloom type magnetometer. Driven by indirect pumping and undergoing a parametric excitation, this system is known to produce noise-squeezing. Our measurements not only reveal a strong asymmetry in the noise distribution of the atomic signal quadratures at the magnetic resonance, but also provide insight into the mechanism behind its generation and evolution. In particular, a structure in the spectrum is identified which allows to investigate the main dependencies and the characteristic timescales of the noise process. The results obtained are compatible with parametrically induced noise squeezing. Notably, the noise spectrum provides information on the spin dynamics even in regimes where the macroscopic atomic coherence is lost, effectively enhancing the sensitivity of the measurements. Our work promotes spin noise spectroscopy as a versatile technique for the study of noise squeezing in a wide range of spin based magnetic sensors.