Chen Qinmiao, Qu Geyang, Yin Jun, Wang Yuhan, Ji Ziheng, Yang Wenhong, Wang Yujie, Yin Zhen, Song Qinghai, Kivshar Yuri, Xiao Shumin
Ministry of Industry and Information Technology Key Lab of Micro-Nano Optoelectronic Information System, Guangdong Provincial Key Laboratory of Semiconductor Optoelectronic Materials and Intelligent Photonic Systems, Harbin Institute of Technology, Shenzhen, P. R. China.
Pengcheng Laboratory, Shenzhen, P. R. China.
Nat Nanotechnol. 2024 Jul;19(7):1000-1006. doi: 10.1038/s41565-024-01636-y. Epub 2024 Apr 1.
Control of the angular momentum of light at the nanoscale is critical for many applications of subwavelength photonics, such as high-capacity optical communications devices, super-resolution imaging and optical trapping. However, conventional approaches to generate optical vortices suffer from either low efficiency or relatively large device footprints. Here we show a new strategy for vortex generation at the nanoscale that surpasses single-pixel phase control. We reveal that interaction between neighbouring nanopillars of a meta-quadrumer can tailor both the intensity and phase of the transmitted light. Consequently, a subwavelength nanopillar quadrumer is sufficient to cover a 2lπ phase change, thus efficiently converting incident light into high-purity optical vortices with different topological charges l. Benefiting from the nanoscale footprint of the meta-quadrumers, we demonstrate high-density vortex beam arrays and high-dimensional information encryption, bringing a new degree of freedom to many designs of meta-devices.
在纳米尺度上控制光的角动量对于亚波长光子学的许多应用至关重要,例如高容量光通信设备、超分辨率成像和光镊。然而,传统的产生光学涡旋的方法要么效率低,要么器件占地面积相对较大。在此,我们展示了一种在纳米尺度上产生涡旋的新策略,该策略超越了单像素相位控制。我们发现,元四聚体相邻纳米柱之间的相互作用可以调整透射光的强度和相位。因此,一个亚波长纳米柱四聚体足以覆盖2lπ的相位变化,从而有效地将入射光转换为具有不同拓扑电荷l的高纯度光学涡旋。受益于元四聚体的纳米尺度占地面积,我们展示了高密度涡旋光束阵列和高维信息加密,为许多元器件设计带来了新的自由度。