Shui Tao, Li Ling, Wang Xin, Yang Wen-Xing
School of Physics and Optoelectronic Engineering, Yangtze University, Jingzhou, Hubei, 434023, China.
Department of Physics, Southeast University, Nanjing, 211189, China.
Sci Rep. 2020 Mar 4;10(1):4019. doi: 10.1038/s41598-020-60809-6.
A coherently prepared Er-doped yttrium aluminum garnet (YAG) crystal with a four-level ionic configuration is exploited for realizing one-dimensional (1D) and two-dimensional (2D) electromagnetically induced gratings (EIGs). Owing to the probe gain induced by the incoherent pump, the diffraction efficiency of the crystal grating, especially the first-order diffraction, can be significantly improved via increasing the incoherent pumping rate or decreasing the probe detuning. The enhancement of the grating diffraction efficiency originates from the interference between the gain and phase gratings. It is also demonstrated that the diffraction of the crystal grating can be dynamically controlled via tuning the intensity and detuning of the standing-wave driving field or the concentration of Er ion. More importantly, the probe energy of the diffraction side lobes around the central principle maximum is comparable to that of the first-order diffraction field for small driving intensity or large driving detuning. Our scheme may provide a possibility for the active all-optical control of optical switching, routing and storage in fiber communication wavelengths.
利用具有四能级离子构型的相干制备的掺铒钇铝石榴石(YAG)晶体来实现一维(1D)和二维(2D)电磁诱导光栅(EIG)。由于非相干泵浦引起的探测增益,通过增加非相干泵浦速率或减小探测失谐,可以显著提高晶体光栅的衍射效率,特别是一阶衍射效率。光栅衍射效率的提高源于增益光栅和相位光栅之间的干涉。还证明了通过调节驻波驱动场的强度和失谐或铒离子浓度,可以动态控制晶体光栅的衍射。更重要的是,对于小驱动强度或大驱动失谐,中心主极大周围衍射旁瓣的探测能量与一阶衍射场的探测能量相当。我们的方案可能为光纤通信波长下光开关、路由和存储中的有源全光控制提供一种可能性。