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一维光学晶格中亚泊松原子数分布的产生与探测。

Generation and detection of a sub-Poissonian atom number distribution in a one-dimensional optical lattice.

作者信息

Béguin J-B, Bookjans E M, Christensen S L, Sørensen H L, Müller J H, Polzik E S, Appel J

机构信息

QUANTOP, Niels Bohr Institute, University of Copenhagen, Blegdamsvej 17, 2100 Copenhagen, Denmark.

出版信息

Phys Rev Lett. 2014 Dec 31;113(26):263603. doi: 10.1103/PhysRevLett.113.263603. Epub 2014 Dec 30.

Abstract

We demonstrate preparation and detection of an atom number distribution in a one-dimensional atomic lattice with the variance -14  dB below the Poissonian noise level. A mesoscopic ensemble containing a few thousand atoms is trapped in the evanescent field of a nanofiber. The atom number is measured through dual-color homodyne interferometry with a pW-power shot noise limited probe. Strong coupling of the evanescent probe guided by the nanofiber allows for a real-time measurement with a precision of ±8  atoms on an ensemble of some 10(3)  atoms in a one-dimensional trap. The method is very well suited for generating collective atomic entangled or spin-squeezed states via a quantum nondemolition measurement as well as for tomography of exotic atomic states in a one-dimensional lattice.

摘要

我们展示了在一维原子晶格中原子数分布的制备与检测,其方差比泊松噪声水平低14分贝。一个包含数千个原子的介观系综被捕获在纳米纤维的倏逝场中。通过使用皮瓦功率散粒噪声受限的探针进行双色零差干涉测量来测量原子数。由纳米纤维引导的倏逝探针的强耦合使得能够对一维阱中约10³个原子的系综进行精度为±8个原子的实时测量。该方法非常适合通过量子非破坏测量来生成集体原子纠缠态或自旋压缩态,以及用于一维晶格中奇异原子态的层析成像。

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