Appel J, Windpassinger P J, Oblak D, Hoff U B, Kjaergaard N, Polzik E S
Danish National Research Foundation Center for Quantum Optics, The Niels Bohr Institute, University of Copenhagen, Blegdamsvej 17, DK-2100 Copenhagen Ø, Denmark.
Proc Natl Acad Sci U S A. 2009 Jul 7;106(27):10960-5. doi: 10.1073/pnas.0901550106. Epub 2009 Jun 17.
Squeezing of quantum fluctuations by means of entanglement is a well-recognized goal in the field of quantum information science and precision measurements. In particular, squeezing the fluctuations via entanglement between 2-level atoms can improve the precision of sensing, clocks, metrology, and spectroscopy. Here, we demonstrate 3.4 dB of metrologically relevant squeezing and entanglement for greater, similar 10(5) cold caesium atoms via a quantum nondemolition (QND) measurement on the atom clock levels. We show that there is an optimal degree of decoherence induced by the quantum measurement which maximizes the generated entanglement. A 2-color QND scheme used in this paper is shown to have a number of advantages for entanglement generation as compared with a single-color QND measurement.
通过纠缠来压缩量子涨落是量子信息科学和精密测量领域中一个公认的目标。特别是,通过两能级原子之间的纠缠来压缩涨落可以提高传感、时钟、计量学和光谱学的精度。在此,我们通过对原子钟能级进行量子非破坏(QND)测量,展示了对于大约10⁵个冷铯原子实现了3.4 dB与计量学相关的压缩和纠缠。我们表明,量子测量所诱导的退相干存在一个最佳程度,它能使所产生的纠缠最大化。与单色QND测量相比,本文所采用的双色QND方案在纠缠产生方面具有许多优势。