Xu Datang, Chen Zhiming, Huang Guoxiang
Opt Express. 2017 Aug 7;25(16):19094-19111. doi: 10.1364/OE.25.019094.
We investigate the formation and propagation of ultraslow weak-light solitons and their memory in the atomic gas filled in a kagome-structured hollow-core photonic crystal fiber (HC-PCF) via electromagnetically induced transparency (EIT). We show that, due to the strong light-atom coupling contributed by the transverse confinement of the HC-PCF, the EIT and hence the optical Kerr nonlinearity of the system can be largely enhanced, and hence optical solitons with very short formation distance, ultraslow propagation velocity, and extremely low generation power can be realized. We also show that the optical solitons obtained can not only be robust during propagation, but also be stored and retrieved with high efficiency through the switching off and on of a control laser field. The results reported herein are promising for practical applications of all-optical information processing and transmission via the ultraslow weak-light solitons and the kagome-structured HC-PCF.
我们通过电磁诱导透明(EIT)研究了填充在戈薇结构空心光子晶体光纤(HC-PCF)中的原子气体中超慢弱光孤子的形成、传播及其存储特性。我们表明,由于HC-PCF的横向限制所导致的强光-原子耦合,系统的EIT以及光学克尔非线性可以得到极大增强,从而能够实现具有极短形成距离、超慢传播速度和极低产生功率的光学孤子。我们还表明,所获得的光学孤子不仅在传播过程中具有鲁棒性,而且可以通过控制激光场的开关实现高效存储和检索。本文报道的结果对于通过超慢弱光孤子和戈薇结构的HC-PCF进行全光信息处理和传输的实际应用具有重要意义。