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Entangling the Spatial Properties of Laser Beams

机译:纠缠激光束的空间特性

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Position and momentum were the first pair of conjugate observables explicitly used to illustrate the intricacy of quantum mechanics. We have extended position and momentum entanglement to bright optical beams. Applications in optical metrology and interferometry require the continuous measurement of laser beams, with the accuracy fundamentally limited by the uncertainty principle. Techniques based on spatial entanglement of the beams could overcome this limit, and high-quality entanglement is required. We report a value of 0.51 for inseparability and 0.62 for the Einstein-Podolsky-Rosen criterion, both normalized to a classical limit of 1. These results are a conclusive optical demonstration of macroscopic position and momentum quantum entanglement and also confirm that the resources for spatial multimode protocols are available.
机译:位置和动量是明确用于说明量子力学复杂性的第一对共轭可观物。我们将位置和动量纠缠扩展到了明亮的光束。在光学计量学和干涉测量学中的应用要求连续测量激光束,其精度从根本上受不确定性原理的限制。基于光束的空间纠缠的技术可以克服该限制,并且需要高质量的纠缠。我们报告了不可分性的值为0.51,爱因斯坦-波多尔斯基-罗森准则的值为0.62,均被归一化为经典极限1。这些结果是宏观位置和动量量子纠缠的结论性光学证明,也证实了空间资源多模式协议可用。

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