论文标题
同步自旋交换光学泵送的NMR-GyRoscope
A Synchronous Spin-Exchange Optically Pumped NMR-Gyroscope
论文作者
论文摘要
惯性导航系统通常包括时间,加速度和方向测量单元。尽管在开发原子钟之类的主要计时源方面取得了很多进展,但加速度和方向测量单元通常需要校准。依赖于两种共同位置的极化贵重气体的同时测量Larmor进动的核磁共振(NMR)陀螺仪可以配置为仅取决于基本常数的比例因子。贵重气体通过与共同分级的光泵碱金属原子的自旋交换碰撞两极化。碱金属原子还用于检测偏光贵重气体核的进动相。在这里,我们提出了一个NMR陀螺仪的版本,该版本旨在抑制碱金属原子的系统错误。我们演示了16 $μ\ text {hz}/\ sqrt {\ text {hz}} $的旋转速率随机步行(ARW)灵敏度,$ \ sim $ 800 nhz。
Inertial navigation systems generally consist of timing, acceleration, and orientation measurement units. Although much progress has been made towards developing primary timing sources such as atomic clocks, acceleration and orientation measurement units often require calibration. Nuclear Magnetic Resonance (NMR) gyroscopes, which rely on continuous measurement of the simultaneous Larmor precession of two co-located polarized noble gases, can be configured to have scale factors that depend to first order only on fundamental constants. The noble gases are polarized by spin-exchange collisions with co-located optically pumped alkali-metal atoms. The alkali-metal atoms are also used to detect the phase of precession of the polarized noble gas nuclei. Here we present a version of an NMR gyroscope designed to suppress systematic errors from the alkali-metal atoms. We demonstrate rotation rate angle random walk (ARW) sensitivity of 16 $μ\text{Hz}/\sqrt{\text{Hz}}$ and bias instability of $\sim$800 nHz.