He Jun, Liu Hong, Zhao Dong, Mehta Jodhbir S, Qiu Cheng-Wei, Sun Fangwen, Teng Jinghua, Huang Kun
Department of Optics and Optical Engineering, University of Science and Technology of China, Hefei, Anhui, China.
Institute of Materials Research and Engineering, Agency for Science Technology and Research (A*STAR), 2 Fusionopolis Way, #08-03, Innovis, Singapore, Singapore.
Nat Commun. 2024 Sep 6;15(1):7819. doi: 10.1038/s41467-024-52256-y.
High-order diffraction (HOD) from optical microstructures is undesirable in many applications because of the accompanying ghosting patterns and loss of efficiency. In contrast to suppressing HOD with subwavelength structures that challenge the fabrication of large-scale devices, managing HOD is less developed due to the lack of an efficient method for independently manipulating HOD. Here, we report independent manipulation of HODs, which are unexploited for subdiffraction-limit focusing in diffractive lenses, through an analytical formula that correlates the diffraction order and the width of each zone. The large spatial frequencies offered by the HODs enable our lenses to reduce the lateral focal size down to 0.44 λ even without any subwavelength feature (indispensable in most high-NA diffractive lenses), facilitating large-scale manufacture. Experimentally, we demonstrate high-order lens-based confocal imaging with a center-to-center dry resolution of 190 nm, the highest among visible-light confocal microscopies, and laser-ablation lithography with achieved direct-writing resolution of 400 nm (0.385 λ).
在许多应用中,光学微结构产生的高阶衍射(HOD)是不理想的,因为会伴随重影图案并降低效率。与使用挑战大规模器件制造的亚波长结构来抑制高阶衍射不同,由于缺乏独立操纵高阶衍射的有效方法,对高阶衍射的管理研究较少。在此,我们报告了通过一个将衍射级次与每个区域宽度相关联的解析公式,对用于衍射透镜中亚衍射极限聚焦但未被开发利用的高阶衍射进行独立操纵。高阶衍射提供的大空间频率使我们的透镜能够将横向焦斑尺寸减小到0.44λ,即使没有任何亚波长特征(这在大多数高数值孔径衍射透镜中是必不可少的),从而便于大规模制造。在实验中,我们展示了基于高阶透镜的共聚焦成像,其中心距干分辨率为190nm,是可见光共聚焦显微镜中最高的,以及激光烧蚀光刻,实现了400nm(0.385λ)的直接写入分辨率。