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Optimization of aspheric geometric-phase lenses for improved field-of-view

机译:改进视野的非球面几何相透镜优化

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In optical thin-films and surfaces, geometric phase is utilized to control the phase beyond that possible through optical path differences. Geometric-phase lenses, which are significantly thinner than refractive lenses for the same numerical aperture (NA), most commonly use a spherical phase profile. This is especially effective for normally incident light, but like other thin lenses, the performance degrades noticeably for off-axis incidence and wider fields-of-view. In this study, we investigate whether or not various aspheric designs provide better off-axis performance. We simulate aspheric singlet and doublet liquid crystal geometric-phase lenses (24.5 mm diameter, 40 mm back focal length at 633 nm), aiming to optimize spot size performance at 0, 3, and 7 degrees field angles, using Zemax OpticStudio 16.5. By using Zernike fringe phase expansions, we find conditions which provide improved off-axis performance. We demonstrate improved performance of a compact lens system utilizing these polarization-dependent optics.
机译:在光学薄膜和表面中,利用几何相通过光路差来控制超出该相位的相位。几何相透镜,其比相同数值孔径(NA)的折射透镜显着薄,最常使用球形相位谱。这对于通常的入射光特别有效,但与其他薄透镜一样,性能明显降低,用于轴外发射和更广泛的视野。在这项研究中,我们调查各种非球面设计是否提供更好的轴上性能。我们模拟了非球面单线和双层液晶几何相透镜(直径为633nm的24.5 mm,40 mm),旨在使用Zemax OpticStudio 16.5优化0,3和7度场角度的点尺寸性能。通过使用Zernike边缘阶段扩展,我们发现提供了改进的轴上性能的条件。我们展示了利用这些偏振依赖性光学器件的紧凑镜头系统的改进性能。

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