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Generation of atom-light entanglement in an optical cavity for quantum enhanced atom interferometry

机译:用于量子增强原子干涉测量的光学腔中的原子光缠结

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We theoretically investigate the generation of atom-light entanglement via Raman superradiance in an optical cavity, and show how this can be used to enhance the sensitivity of atom interferometry. We model a realistic optical cavity, and show that by careful temporal shaping of the optical local oscillator used to measure the light emitted from the cavity, information in the optical mode can be combined with the signal from the atom interferometer to reduce the quantum noise, and thus increase the sensitivity. It was found in Phys. Rev. Lett. 110, 053002 (2013) that an atomic "seed" was required in order to reduce spontaneous emission and allow for single mode behavior of the device. In this paper we find that the optical cavity reduces the need for an atomic seed, which allows for stronger atom-light correlations and a greater level of quantum enhancement.
机译:理论上,通过拉曼超长率在光学腔中测验原子光缠结的产生,并展示如何使用它来增强原子干涉测量的灵敏度。 我们模拟一个现实的光学腔,并表明,通过仔细的时间成形,通过用于测量从腔光发射的光的光学局部振荡器,光学模式中的信息可以与来自原子干涉仪的信号组合以减少量子噪声, 从而提高灵敏度。 它是在物理中发现的。 rev. lett。 110,053002(2013)需要原子“种子”以减少自发发射并允许设备的单模行为。 在本文中,发现光学腔减少了对原子种子的需求,这允许更强的原子光相关和更大水平的量子增强。

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