Dong Yibo, Pan Guanzhong, Xun Meng, Su Hang, Chen Long, Sun Yun, Luan Haitao, Fang Xinyuan, Wu Dexin, Gu Min
Institute of Photonic Chips, University of Shanghai for Science and Technology, Shanghai 200093 People's Republic of China.
Institute of Microelectronics, Chinese Academy of Sciences, Beijing 100029 People's Republic of China.
Nano Lett. 2023 Oct 11;23(19):9096-9104. doi: 10.1021/acs.nanolett.3c02938. Epub 2023 Sep 25.
Vertical-cavity surface-emitting lasers (VCSELs) represent an attractive light source to integrate with OAM structures to realize chip-scale vortex lasers. Although pioneering endeavors of VCSEL-based vortex lasers have been reported, they cannot achieve large topological charges (less than = 5) due to the insufficient space-bandwidth product (SBP) caused by the inherent limited device size. Here, by integrating a nanoprinted OAM phase structure on the VCSELs, we demonstrate a vortex microlaser with a low threshold and simple structure. A monolithic microlaser array with addressable control of vortex beams with different topological charges ( = 1 to = 5) was achieved. Nanoprinting offers high degrees of freedom for the manipulation of spatial structures. To address the challenge of insufficient SBP, two-layer cascaded spiral phase plates were designed. Thereby, a vortex beam with = 15 and mode purity of 83.7% was obtained. Our work paves the way for future chip-scale OAM-based information multiplexing with more channels.
垂直腔面发射激光器(VCSEL)是一种极具吸引力的光源,可与轨道角动量(OAM)结构集成,以实现芯片级涡旋激光器。尽管已有基于VCSEL的涡旋激光器的开创性研究报道,但由于器件固有尺寸有限导致空间带宽积(SBP)不足,它们无法实现大的拓扑电荷数(小于 = 5)。在此,通过在VCSEL上集成纳米打印的OAM相位结构,我们展示了一种具有低阈值和简单结构的涡旋微激光器。实现了一个可对具有不同拓扑电荷数( = 1至 = 5)的涡旋光束进行寻址控制的单片微激光器阵列。纳米打印为空间结构的操控提供了高度的自由度。为应对SBP不足的挑战,设计了两层级联螺旋相位板。由此,获得了拓扑电荷数 = 15且模式纯度为83.7%的涡旋光束。我们的工作为未来基于芯片级OAM的多通道信息复用铺平了道路。