Cheng Chin-Yao, Liu Zi-Yu, Hu Pi-Sheng, Wang Tsai-Ni, Chien Chung-Yu, Lin Jia-Kang, Juo Jz-Yuan, Shiu Jiun-Shiuan, Yu Ite A, Chen Ying-Cheng, Chen Yong-Fan
Opt Lett. 2021 Feb 1;46(3):681-684. doi: 10.1364/OL.414263.
Efficient frequency conversion of photons has important applications in optical quantum technology because the frequency range suitable for photon manipulation and communication usually varies widely. Recently, an efficient frequency conversion system using a double- four-wave mixing (FWM) process based on electromagnetically induced transparency (EIT) has attracted considerable attention because of its potential to achieve a nearly 100% conversion efficiency (CE). To obtain such a high CE, the spontaneous emission loss in this resonant-type FWM system must be suppressed considerably. A simple solution is to arrange the applied laser fields in a backward configuration. However, the phase mismatch due to this configuration can cause a significant decrease in CE. Here, we demonstrate that the phase mismatch can be effectively compensated by introducing the phase shift obtained by two-photon detuning. Under optimal conditions, we observe a wavelength conversion from 780 to 795 nm with a maximum CE of 91.2±0.6 by using this backward FWM system at an optical depth of 130 in cold Rb atoms. The current work represents an important step toward achieving low-loss, high-fidelity quantum frequency conversion based on EIT.
光子的高效频率转换在光量子技术中具有重要应用,因为适用于光子操控和通信的频率范围通常差异很大。最近,一种基于电磁诱导透明(EIT)的双四波混频(FWM)过程的高效频率转换系统因其有潜力实现近100%的转换效率(CE)而备受关注。为了获得如此高的CE,必须大幅抑制这种共振型FWM系统中的自发辐射损耗。一个简单的解决方案是将施加的激光场以反向配置排列。然而,由于这种配置导致的相位失配会使CE显著降低。在此,我们证明通过引入双光子失谐获得的相移可以有效补偿相位失配。在最佳条件下,我们在冷铷原子中光学深度为130时使用这种反向FWM系统,观察到从780纳米到795纳米的波长转换,最大CE为91.2±0.6。当前的工作是朝着基于EIT实现低损耗、高保真量子频率转换迈出的重要一步。