论文标题
用于基本物理实验的高度漂移稳定的原子磁力计
A Highly Drift-stable Atomic Magnetometer for Fundamental Physics Experiments
论文作者
论文摘要
我们报告了非磁性漂移稳定的光学泵磁力计的设计和性能,在200 s的整合时间和稳定性下,在70 s至600 s之间的稳定性下,敏感性为35英尺。据我们所知,这是迄今为止最稳定的磁场测量值。该传感器基于非线性磁光旋转效果:在钟形构型中,CS原子的高阶极化力矩(对齐)是在抗弹药涂层的真空中使用泵激光束在室温下填充CS Vapor的抗弹性涂层的Pyrex电池中产生的。由于原子在2.1 mut的外部磁场中的动力,通过光学确定Larmor prosession频率的原子进行了调节。操作是基于一系列光泵送和以8 Hz的重复速率观察自由进取的旋转的序列。这种免费的进动衰减读数方案将光学泵送和探测分开,从而确保系统地高度清洁的测量。由于<15 pt的传感器的残留偏移以及相邻传感器的跨言式无操作操作,因此该设备非常适合具有极高精确度的低能粒子物理学中的各种实验,此处是高度稳定且系统地清洁的参考探针,可用于搜索时间逆变的对称性的对称性电动型电动型二波尔次要。
We report the design and performance of a non-magnetic drift stable optically pumped cesium magnetometer with a measured sensitivity of 35 fT at 200 s integration time and stability below 50 fT between 70 s and 600 s. To our knowledge this is the most stable magnetic field measurement to date. The sensor is based on the nonlinear magneto-optical rotation effect: in a Bell-Bloom configuration a higher order polarization moment (alignment) of Cs atoms is created with a pump laser beam in an anti-relaxation coated Pyrex cell under vacuum, filled with Cs vapor at room temperature. The polarization plane of light passing through the cell is modulated due the precession of the atoms in an external magnetic field of 2.1 muT, used to optically determine the Larmor precession frequency. Operation is based on a sequence of optical pumping and observation of freely precessing spins at a repetition rate of 8 Hz. This free precession decay readout scheme separates optical pumping and probing and thus ensures a systematically highly clean measurement. Due to the residual offset of the sensor of < 15 pT together with the cross-talk free operation of adjacent sensors, this device is uniquely suitable for a variety of experiments in low-energy particle physics with extreme precision, here as highly stable and systematically clean reference probe in search for time-reversal symmetry violating electric dipole moments.