Bai Zhengyang, Huang Guoxiang
Opt Express. 2016 Mar 7;24(5):4442-4461. doi: 10.1364/OE.24.004442.
We investigate the optical Kerr nonlinearities of an ensemble of cold Rydberg atoms under the condition of electromagnetically induced transparency (EIT). By using an approach beyond mean-field theory, we show that the system possesses not only enhanced third-order nonlinear optical susceptibility, but also giant fifth-order nonlinear optical susceptibility, which has a cubic dependence on atomic density. Our results demonstrate that both the third-order and the fifth-order nonlinear optical susceptibilities consist of two parts, contributed respectively by photon-atom interaction and Rydberg-Rydberg interaction. The Kerr nonlinearity induced by the Rydberg-Rydberg interaction plays a leading role at high atomic density. We find that the fifth-order nonlinear optical susceptibility in the Rydberg-EIT system may be five orders of magnitude larger than that obtained in traditional EIT systems. The results obtained may have promising applications in light and quantum information processing and transmission at weak-light level.
我们研究了在电磁诱导透明(EIT)条件下冷里德堡原子系综的光学克尔非线性效应。通过使用一种超越平均场理论的方法,我们表明该系统不仅具有增强的三阶非线性光学极化率,还具有巨大的五阶非线性光学极化率,其对原子密度呈立方依赖关系。我们的结果表明,三阶和五阶非线性光学极化率均由两部分组成,分别由光子 - 原子相互作用和里德堡 - 里德堡相互作用贡献。在高原子密度下,里德堡 - 里德堡相互作用诱导的克尔非线性效应起主导作用。我们发现,里德堡 - EIT系统中的五阶非线性光学极化率可能比传统EIT系统中获得的大五个数量级。所获得的结果在弱光水平的光和量子信息处理与传输方面可能具有广阔的应用前景。