Yang Xihua, Shang Jie, Xue Bolin, Zhou Yuanyuan, Xiao Min
Opt Express. 2014 May 19;22(10):12563-72. doi: 10.1364/OE.22.012563.
We conduct theoretical studies on the effects of various parameters on generation of multipartite continuous-variable entanglement via atomic spin wave induced by the strong coupling and probe fields in the Λ-type electromagnetically induced transparency configuration in a realistic atomic ensemble by using the Heisenberg-Langevin formalism. It is shown that the increase of the atomic density and/or Rabi frequencies of the scattering fields, as well as the decrease of the coherence decay rate of the lower doublet would strengthen the degree of multipartite entanglement. This provides a clear evidence that the creation of multicolor multipartite entangled narrow-band fields to any desired number with a long correlation time can be achieved conveniently by using atomic spin wave in an atomic ensemble with large optical depth, which may find interesting applications in quantum information processing and quantum networks.
我们利用海森堡 - 朗之万形式理论,对现实原子系综中Λ型电磁诱导透明配置下,强耦合场和探测场诱导的原子自旋波产生多体连续变量纠缠时各种参数的影响进行了理论研究。结果表明,原子密度和/或散射场的拉比频率的增加,以及较低双重态的相干衰减率的降低,都会增强多体纠缠程度。这提供了一个明确的证据,即通过在具有大光学深度的原子系综中使用原子自旋波,可以方便地实现具有长关联时间的任意所需数量的多色多体纠缠窄带场的产生,这可能在量子信息处理和量子网络中找到有趣的应用。