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Nuclear spin decoherence time in MEMS atomic vapor cells for applications in quantum technologies

机译:MEMS原子蒸气细胞中核自旋脱机时间,用于量子技术的应用

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We report on the fabrication and characterization of MEMS atomic vapor cells suitable for applications in miniaturized quantum sensors such as atomic gyroscopes. Our MEMS cells are filled with natural abundance Rb alkali atoms and enriched noble Xe atoms and are operated in the regime of spin exchange optical pumping. The transverse relaxation time T2*of the nuclear spin in ~(129)Xe atoms directly defines the angular random walk parameter of an atomic gyroscope. Using a field switch technique, we measure the dephasing time T_2*of the ~(129)Xe isotope as a function of temperature. Our results showing a decrease of T_2* from about 1 to 0.4 seconds with an increasing temperature in the range from 80 to 150 °C are in good agreement with a simple theoretical model taking into account the most important decoherence mechanisms. We show that the observed decoherence behavior can be mostly explained trough collisions of the Xe atoms with the walls. Further characterization steps in order to gain more insight in the decoherence physics involved in our MEMS cells are discussed.
机译:我们报告了适用于在原子型陀螺仪中小型化量子传感器中的应用的MEMS原子蒸气细胞的制造和表征。我们的MEMS细胞用天然丰度RB碱原子填充并富含贵族XE原子,并在旋转交换光学泵送的状态下操作。核旋转的横向松弛时间T2 *〜(129)Xe原子直接定义原子陀螺的角度随机步行参数。使用现场切换技术,我们测量〜(129)XE同位素的相位时间t_2 *作为温度的函数。我们的结果表明,从80至150°C的范围内的温度增加到约1至0.4秒的T_2 *的结果与一个简单的理论模型相一致,考虑到最重要的破坏机制。我们表明,观察到的去渗行为可以大多数用墙壁解释XE原子的沟碰撞。讨论了进一步的表征步骤,以便讨论在MEMS细胞中涉及的涉及所涉及的漂移物理学中的更多洞察力。

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