• Chinese Optics Letters
  • Vol. 21, Issue 2, 023601 (2023)
Fan Yang1, Sensong An2, Mikhail Y. Shalaginov1, Hualiang Zhang2, Juejun Hu1、3、*, and Tian Gu1、3、**
Author Affiliations
  • 1Department of Materials Science & Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA
  • 2Department of Electrical & Computer Engineering, University of Massachusetts Lowell, Lowell, Massachusetts 01854, USA
  • 3Materials Research Laboratory, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA
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    DOI: 10.3788/COL202321.023601 Cite this Article Set citation alerts
    Fan Yang, Sensong An, Mikhail Y. Shalaginov, Hualiang Zhang, Juejun Hu, Tian Gu. Understanding wide field-of-view flat lenses: an analytical solution [Invited][J]. Chinese Optics Letters, 2023, 21(2): 023601 Copy Citation Text show less
    Schematic illustration of WFOV metalens design. (a) 3D structure. (b) Illustration of the phase profile derivation. (c) Illustration of the image height derivation. (a) is reprinted with permission from the American Chemical Society[23].
    Fig. 1. Schematic illustration of WFOV metalens design. (a) 3D structure. (b) Illustration of the phase profile derivation. (c) Illustration of the image height derivation. (a) is reprinted with permission from the American Chemical Society[23].
    Calculated performance of an ideal WFOV lens. (a) Lens phase profile retrieved from analytical and numerical solutions. (b) Image heights with different AOIs from analytical and numerical solutions. The green dashed line represents the telecentric condition, which corresponds to d=s=Lαn2−sin2 α. (c) Focusing efficiency and Strehl ratio for different AOIs. (d)–(g) Normalized intensity profiles at the image plane with different AOIs (scale bars are 20 µm).
    Fig. 2. Calculated performance of an ideal WFOV lens. (a) Lens phase profile retrieved from analytical and numerical solutions. (b) Image heights with different AOIs from analytical and numerical solutions. The green dashed line represents the telecentric condition, which corresponds to d=s=Lαn2sin2α. (c) Focusing efficiency and Strehl ratio for different AOIs. (d)–(g) Normalized intensity profiles at the image plane with different AOIs (scale bars are 20 µm).
    Simulated performance of a metalens composed of realistic meta-atoms. (a) Image height, (b) efficiency, and Strehl ratio for different AOIs based on full-wave modeled meta-atoms.
    Fig. 3. Simulated performance of a metalens composed of realistic meta-atoms. (a) Image height, (b) efficiency, and Strehl ratio for different AOIs based on full-wave modeled meta-atoms.
    (a), (b) Effects of NA on efficiency and Strehl ratio averaged over the entire near-180° FOV by changing (a) focal length and (b) aperture size. (c) Effects of substrate thickness on averaged efficiency and Strehl ratio.
    Fig. 4. (a), (b) Effects of NA on efficiency and Strehl ratio averaged over the entire near-180° FOV by changing (a) focal length and (b) aperture size. (c) Effects of substrate thickness on averaged efficiency and Strehl ratio.
    Fan Yang, Sensong An, Mikhail Y. Shalaginov, Hualiang Zhang, Juejun Hu, Tian Gu. Understanding wide field-of-view flat lenses: an analytical solution [Invited][J]. Chinese Optics Letters, 2023, 21(2): 023601
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