Ray-tracing model of a perfect lens compliant with Fermat's principle: the Cardinal Lens

被引:1
|
作者
Wilde, Jeffrey P. [1 ]
机构
[1] Stanford Univ, EL Ginzton Lab, Stanford, CA 94305 USA
关键词
D O I
10.1364/AO.507605
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
When using ray tracing for optical system design, it is often the case that the designer would like to implement simplified versions of one or more compound lens groups. This could be the case during initial layout when idealized versions of such compound lenses are needed or, perhaps alternatively, to mimic a well -corrected commercially available lens for which the prescription details are unavailable. One option is to use a paraxial thin lens as a proxy for the actual lens group, but doing so will yield a layout that is not consistent with Fermat's principle or the Abbe sine condition. For example, a paraxial lens version of a compound microscope objective typically produces the wrong numerical aperture for a given entrance pupil diameter, and vice versa. A better option is to use a lens model that provides perfect imaging for a specified paraxial magnification and obeys Fermat's principle. A variant of the model can yield a perfect Fourier transform lens. In addition, it is desirable to implement an idealized thick lens in which the principal planes are separated by a user -specified distance. This paper presents such a model, referred to as the Cardinal Lens, with implementation in Zemax OpticStudio via a user -defined surface. (c) 2024 Optica Publishing Group under the terms of the Optica Open Access Publishing Agreement
引用
收藏
页码:1110 / 1124
页数:15
相关论文
共 50 条
  • [41] A ray-tracing model of the Vela magnetosphere
    Hirano, C
    Gwinn, CR
    PULSAR ASTRONOMY - 2000 AND BEYOND: IAU COLLOQUIUM 177, 2000, 202 : 437 - 438
  • [42] Equivalent Planar Lens Ray-Tracing Model to Design Modulated Geodesic Lenses Using Non-Euclidean Transformation Optics
    Fonseca, Nelson J. G.
    Liao, Qingbi
    Quevedo-Teruel, Oscar
    IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2020, 68 (05) : 3410 - 3422
  • [43] Use of Scheimpflug corneal anterior-posterior imaging in ray-tracing intraocular lens power calculation
    Miyata, Kazunori
    Otani, Shinichiro
    Honbou, Naoto
    Minami, Keiichiro
    ACTA OPHTHALMOLOGICA, 2013, 91 (07) : E546 - E549
  • [44] Ray-tracing intraocular lens power calculation using anterior segment optical coherence tomography measurements
    Minami, Keiichiro
    Kataoka, Yasushi
    Matsunaga, Jiro
    Ohtani, Shinichiro
    Honbou, Masato
    Miyata, Kazunori
    JOURNAL OF CATARACT AND REFRACTIVE SURGERY, 2012, 38 (10): : 1758 - 1763
  • [45] Quantifying spherical aberration of the human crystalline lens during simulated accommodation using ray-tracing aberrometry
    Ruggeri, Marco
    Williams, Siobhan
    Heilman, Bianca Maceo
    Mohamed, Ashik
    Chang, Yu-Cherng
    Sravani, N. Geetha
    Durgam, Shravya Sri
    Ho, Arthur
    Parel, Jean-Marie
    Manns, Fabrice
    INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2019, 60 (09)
  • [46] Assessing Accuracy of Okulix Ray-Tracing Software in Calculating Intraocular Lens Power in the Long Cataractous Eyes
    Jamali, Alireza
    Jabbarvand, Mahmoud
    Asharlous, Amir
    Doostdar, Asgar
    Bordbar, Soodeh
    Khabazkhoob, Mehdi
    JOURNAL OF CURRENT OPHTHALMOLOGY, 2022, 34 (01): : 67 - 73
  • [47] Accuracy of Intraocular Lens Calculation With Ray Tracing
    Hoffmann, Peter
    Wahl, Jochen
    Preussner, Paul-Rolf
    JOURNAL OF REFRACTIVE SURGERY, 2012, 28 (09) : 650 - 655
  • [48] Ray tracing through diffractive optical elements based on the principle of Fermat
    Zhao, Liping
    Wu, Minxian
    Jin, Guofan
    Chinese Journal of Lasers B (English Edition), 1997, B6 (04): : 360 - 365
  • [49] Ray Tracing Through Diffractive Optical Elements Based on the Principle of Fermat
    ZHAO Liping WU Minxian JIN Guofan(Department of Precision Instruments
    Chinese Journal of Lasers, 1997, (04) : 73 - 78
  • [50] Lens for uniform LED illumination: an example of automated optimization using Monte Carlo ray-tracing of an LED source
    Jacobson, BA
    Gengelbach, RD
    NONIMAGING OPTICS: MAXIMUM EFFICIENCY LIGHT TRANSFER VI, 2001, 4446 : 121 - 128