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Aberration-compensated supercritical lens for sub-diffractive focusing within 20 degrees field of view

机译:像差补偿超临界透镜,用于 20 度视场内的亚衍射聚焦

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The supercritical lens has shown a remarkable capabil-ity of achieving far-field sub-diffraction limited focusing through elaborating a modulated interference effect. Ben-efiting from the relative high energy utilization efficiency and weak sidelobe properties, the supercritical lens holds significant advantage in a series of application scenarios. However, all of the demonstrated supercritical lenses mainly work in the on-axis illumination condition, so the off-axis aberration effect will severely deteriorate its sub-diffraction limit focusing capability for the illuminating beam with an oblique angle. In this work, an aberration-compensated supercritical lens with single-layer configuration is pro-posed and experimentally demonstrated. Such a single-layer supercritical lens consists of multilevel phase configurations patterned with the two-photon polymerization lithogra-phy technique. The simulation and experimental recorded results show that the aberration-compensated supercriti-cal lens with a numerical aperture value of 0.63 could achieve a far-field sub-diffraction limited focusing property within 20 degrees field of view at a wavelength of lambda = 633 nm. This monochromatic aberration-compensated supercritical lens with single-layer configuration indicates excellent potential in the development of laser scanning ultrahigh optical stor-age and label free super-resolution imaging. (c) 2023 Optica Publishing Group
机译:超临界透镜通过阐述调制干涉效应,显示出实现远场亚衍射极限聚焦的卓越能力。由于能量利用效率相对较高,旁瓣特性较弱,超临界透镜在一系列应用场景中具有显著优势。然而,所有已展示的超临界透镜主要在同轴照明条件下工作,因此离轴像差效应将严重降低其对倾斜角照明光束的亚衍射极限聚焦能力。在这项工作中,提出了一种具有单层构型的像差补偿超临界透镜,并通过实验进行了演示。这种单层超临界透镜由采用双光子聚合岩石物理技术图案化的多能级相配置组成。仿真和实验记录结果表明,在λ=633 nm波长下,数值孔径值为0.63的像差补偿超临界透镜在20度视场内实现了远场亚衍射极限聚焦特性。这种单色像差补偿超临界透镜具有单层配置,在激光扫描超高光学存储年限和无标记超分辨率成像的发展中具有巨大的潜力。(c) 2023 Optica 出版集团

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