Asadpour Seyyed Hossein, Hamedi Hamid Reza, Jafari Mahmoud
Appl Opt. 2018 May 20;57(15):4013-4019. doi: 10.1364/AO.57.004013.
This paper hints at the Goos-Hänchen shift properties of a cavity containing an ensemble of atoms using a four-level atomic system involving a Rydberg state. By means of the stationary phase theory and density matrix formalism in quantum optics, we study theoretically the Goos-Hänchen shifts in both reflected and transmitted light beams. It is realized that as a result of the interaction between Rydberg and excited states in such a four-level atom-light coupling scheme the maximum positive and negative Goos-Hänchen shifts can be obtained in reflected and transmitted light beams owning to the effect of the Rydberg electromagnetically induced transparency (EIT) or Rydberg electromagnetically induced absorption. In particular, when the switching field is absent and the Rydberg EIT is dominant in the medium, a giant Goos-Hänchen shift can be achieved for both reflected and transmitted light beams.
本文利用包含里德堡态的四能级原子系统,暗示了含有原子系综的腔的古斯-汉欣位移特性。借助量子光学中的稳态理论和密度矩阵形式,我们从理论上研究了反射光束和透射光束中的古斯-汉欣位移。结果发现,在这种四能级原子-光耦合方案中,由于里德堡态与激发态之间的相互作用,由于里德堡电磁诱导透明(EIT)或里德堡电磁诱导吸收的作用,在反射光束和透射光束中可以获得最大的正负古斯-汉欣位移。特别是,当不存在开关场且里德堡EIT在介质中占主导时,反射光束和透射光束都可以实现巨大的古斯-汉欣位移。