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通过里德堡缀饰原子系综阵列实现自旋压缩

Spin Squeezing by Rydberg Dressing in an Array of Atomic Ensembles.

作者信息

Hines Jacob A, Rajagopal Shankari V, Moreau Gabriel L, Wahrman Michael D, Lewis Neomi A, Marković Ognjen, Schleier-Smith Monika

机构信息

Department of Physics, Stanford University, Stanford, California 94305, USA.

Department of Applied Physics, Stanford University, Stanford, California 94305, USA.

出版信息

Phys Rev Lett. 2023 Aug 11;131(6):063401. doi: 10.1103/PhysRevLett.131.063401.

Abstract

We report on the creation of an array of spin-squeezed ensembles of cesium atoms via Rydberg dressing, a technique that offers optical control over local interactions between neutral atoms. We optimize the coherence of the interactions by a stroboscopic dressing sequence that suppresses super-Poissonian loss. We thereby prepare squeezed states of N=200 atoms with a metrological squeezing parameter ξ^{2}=0.77(9) quantifying the reduction in phase variance below the standard quantum limit. We realize metrological gain across three spatially separated ensembles in parallel, with the strength of squeezing controlled by the local intensity of the dressing light. Our method can be applied to enhance the precision of tests of fundamental physics based on arrays of atomic clocks and to enable quantum-enhanced imaging of electromagnetic fields.

摘要

我们报告了通过里德堡缀饰创建铯原子自旋压缩系综阵列的情况,该技术可对中性原子之间的局部相互作用进行光学控制。我们通过抑制超泊松损耗的频闪缀饰序列优化相互作用的相干性。由此,我们制备了N = 200个原子的压缩态,其计量学压缩参数ξ² = 0.77(9),量化了相位方差低于标准量子极限的减小量。我们在三个空间分离的系综上并行实现了计量学增益,压缩强度由缀饰光的局部强度控制。我们的方法可用于提高基于原子钟阵列的基础物理测试的精度,并实现电磁场的量子增强成像。

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