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Effective photon-photon interaction in a two-dimensional 'photon fluid'

机译:二维“光子流体”中的有效光子-光子相互作用

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摘要

We formulate an effective theory for the atom-mediated photon-photon interactions in a two-dimensional ``photon fluid'' confined in a Fabry-Perot resonator. With the atoms modelled by a collection of anharmonic Lorentz oscillators, the effective interaction is evaluated to second order in the coupling constant (the anharmonicity parameter). The interaction has the form of a renormalized two-dimensional delta-function potential, with the renormalization scale determined by the physical parameters of the system, such as density of atoms and the detuning of the photons relative to the resonance frequency of the atoms. For realistic values of the parameters, the perturbation series has to be resummed, and the effective interaction becomes independent of the ``bare'' strength of the anharmonic term. The resulting expression for the non-linear Kerr susceptibility, is parametrically equal to the one found earlier for a dilute gas of two-level atoms. Using our result for the effective interaction parameter, we derive conditions for the formation of a photon fluid, both for Rydberg atoms in a microwave cavity and for alkali atoms in an optical cavity.
机译:我们为限制在Fabry-Perot谐振器中的二维``光子流体''中的原子介导的光子-光子相互作用制定了有效的理论。利用由非谐Lorentz振荡器集合建模的原子,有效耦合作用在耦合常数(非谐参数)中被评估为二阶。相互作用具有重新规范化的二维德尔塔函数势的形式,其中重新规范化的规模取决于系统的物理参数,例如原子的密度和光子相对于原子共振频率的失谐。对于参数的实际值,必须恢复扰动级数,并且有效相互作用变得与非谐项的``裸露''强度无关。非线性Kerr磁化率的结果表达式在参数上等于早先针对两级原子的稀薄气体发现的表达式。使用有效相互作用参数的结果,我们得出形成光子流体的条件,包括微波腔中的里德堡原子和光学腔中的碱原子。

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