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光子晶体光纤中冷原子介导的宽带光光相互作用。

Broadband photon-photon interactions mediated by cold atoms in a photonic crystal fiber.

机构信息

icFRC, IPCMS (UMR 7504) and ISIS (UMR 7006), Université de Strasbourg and CNRS, 67000 Strasbourg, France.

出版信息

Sci Rep. 2016 May 12;6:25630. doi: 10.1038/srep25630.

Abstract

We demonstrate theoretically that photon-photon attraction can be engineered in the continuum of scattering states for pairs of photons propagating in a hollow-core photonic crystal fiber filled with cold atoms. The atoms are regularly spaced in an optical lattice configuration and the photons are resonantly tuned to an internal atomic transition. We show that the hard-core repulsion resulting from saturation of the atomic transitions induces bunching in the photonic component of the collective atom-photon modes (polaritons). Bunching is obtained in a frequency range as large as tens of GHz, and can be controlled by the inter-atomic separation. We provide a fully analytical explanation for this phenomenon by proving that correlations result from a mismatch of the quantization volumes for atomic excitations and photons in the continuum. Even stronger correlations can be observed for in-gap two-polariton bound states. Our theoretical results use parameters relevant for current experiments and suggest a simple and feasible way to induce interactions between photons.

摘要

我们从理论上证明,在填充冷原子的中空芯光子晶体光纤中传播的光子对的散射态连续体中,可以实现光子-光子吸引。原子以光学晶格的形式规则排列,光子与原子的内部跃迁共振调谐。我们表明,由于原子跃迁的饱和导致的硬心排斥引起了集体原子-光子模式(极化激元)的光子分量的聚集。聚集发生在高达数十 GHz 的频率范围内,并且可以通过原子间的间隔来控制。我们通过证明相关性源于原子激发和连续体中的光子的量子化体积的不匹配,为这种现象提供了一个完全的解析解释。对于带隙中的双极化激元束缚态,可以观察到更强的相关性。我们的理论结果使用了与当前实验相关的参数,并提出了一种简单可行的方法来诱导光子之间的相互作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/444d/4864373/0253026603d3/srep25630-f1.jpg

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