首页> 外文会议>2015 Joint Conference of the IEEE International Frequency Control Symposium amp; European Frequency and Time Forum >Generating entanglement between atomic spins with low-noise probing of an optical cavity
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Generating entanglement between atomic spins with low-noise probing of an optical cavity

机译:用光学腔的低噪声探测在原子自旋之间产生纠缠

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Atomic projection noise limits the ultimate precision of all atomic sensors, including clocks, inertial sensors, magnetometers, etc. The independent quantum collapse of N atoms into a definite state (for example spin up or down) leads to an uncertainty Δθ = 1/√N in the estimate of the quantum phase accumulated during a Ramsey sequence or its many generalizations. This phase uncertainty is referred to as the standard quantum limit. Creating quantum entanglement between the N atoms can allow the atoms to partially cancel each other's quantum noise, leading to reduced noise in the phase estimate below the standard quantum limit. Recent experiments have demonstrated up to 10 dB of phase noise reduction relative to the SQL by making collective spin measurements. This is achieved by trapping laser-cooled Rb atoms in an optical cavity and precisely measuring the shift of the cavity resonance frequency by an amount that depends on the number of atoms in spin up. Detecting the probe light with high total efficiency reduces excess classical and quantum back-action of the probe. Here we discuss recent progress and a technique for reducing the relative frequency noise between the probe light and the optical cavity, a key requirement for further advances.
机译:原子投影噪声限制了所有原子传感器(包括时钟,惯性传感器,磁力计等)的最终精度。N原子独立地陷入确定的状态(例如旋转或向下旋转)会导致不确定性Δθ= 1 /√拉姆西序列或其许多概括过程中累积的量子相位估计中的N。该相位不确定性称为标准量子极限。在N个原子之间产生量子纠缠,可以使原子部分抵消彼此的量子噪声,从而在相位估计以下将噪声降低到标准量子极限以下。最近的实验表明,通过进行集体自旋测量,相对于SQL而言,相位噪声最多可降低10 dB。这是通过将激光冷却的Rb原子捕获在光学腔体中并精确测量腔体共振频率的偏移来实现的,该偏移量取决于自旋向上的原子数。以较高的总效率检测探针光可减少探针的过量经典和量子反作用。在这里,我们讨论了最新的进展以及减少探测光和光学腔之间的相对频率噪声的技术,这是进一步发展的关键要求。

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