Temporal coherences of atomic chaotic light sources: The Siegert relation and its generalisation to higher order correlation functions

Martial Morisse, Stuti Joshi, J. Mika, J. Capella, Robin Kaiser, Romain Bachelard, Lukas Slodicka, M. Hugbart
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Abstract

Light is characterized by its electric field, yet quantum optics has revealed the importance of monitoring photon-photon correlations at all orders. We here present a comparative study of two experimental setups, composed of cold and warm Rubidium atoms, respectively, which allow us to probe and compare photon correlations. The former operates in the quantum regime where spontaneous emission dominates, whereas the latter exhibits a temperature-limited coherence time. We demonstrate our capability to measure photon correlations up to the fourth order which could be useful to better characterize light scattered by cold atoms beyond the chaotic statistics.
原子混沌光源的时间一致性:西格特关系及其对高阶相关函数的概括
光的特征是其电场,然而量子光学揭示了在所有阶次监测光子-光子相关性的重要性。我们在此对分别由冷铷原子和暖铷原子组成的两个实验装置进行了比较研究,从而探究并比较了光子相关性。前者在自发辐射占主导地位的量子体系中运行,而后者则表现出温度受限的相干时间。我们展示了测量高达四阶光子相关性的能力,这有助于更好地描述冷原子散射光的特性,而不是混沌统计量。
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