Zeng Xinglin, Russell Philip St J, Wolff Christian, Frosz Michael H, Wong Gordon K L, Stiller Birgit
Max Planck Institute for the Science of Light, Staudtstr. 2, 91058 Erlangen, Germany.
Center for Nano Optics, University of Southern Denmark, Campusvej 55, DK-5230 Odense M, Denmark.
Sci Adv. 2022 Oct 21;8(42):eabq6064. doi: 10.1126/sciadv.abq6064. Epub 2022 Oct 19.
Optical nonreciprocity, which breaks the symmetry between forward and backward propagating optical waves, has become vital in photonic systems and enables many key applications. So far, all the existing nonreciprocal systems are implemented for linearly or randomly polarized fundamental modes. Optical vortex modes, with wavefronts that spiral around the central axis of propagation, have been extensively studied over the past decades and offer an additional degree of freedom useful in many applications. Here, we report a light-driven nonreciprocal isolation system for optical vortex modes based on topology-selective stimulated Brillouin scattering (SBS) in chiral photonic crystal fiber. The device can be reconfigured as an amplifier or an isolator by adjusting the frequency of the control signal. The experimental results show vortex isolation of 22 decibels (dB), which is at the state of the art in fundamental mode isolators using SBS. This device may find applications in optical communications, fiber lasers, quantum information processing, and optical tweezers.
光学非互易性打破了向前和向后传播的光波之间的对称性,在光子系统中变得至关重要,并促成了许多关键应用。到目前为止,所有现有的非互易系统都是针对线性或随机偏振的基模实现的。光学涡旋模式的波前围绕传播中心轴呈螺旋状,在过去几十年中得到了广泛研究,并提供了在许多应用中有用的额外自由度。在此,我们报告了一种基于手性光子晶体光纤中拓扑选择性受激布里渊散射(SBS)的用于光学涡旋模式的光驱动非互易隔离系统。通过调整控制信号的频率,该器件可以重新配置为放大器或隔离器。实验结果表明,涡旋隔离度为22分贝(dB),这在使用SBS的基模隔离器中处于现有技术水平。该器件可能在光通信、光纤激光器、量子信息处理和光镊等领域找到应用。