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
  • [21] Ray-Tracing Analysis of the Near and Far Fields of Focusing Geodesic Lens Antennas
    Leon, German
    Orgeira, Omar
    Fonseca, Nelson J. G.
    Quevedo-Terul, Oscar
    2020 14TH EUROPEAN CONFERENCE ON ANTENNAS AND PROPAGATION (EUCAP 2020), 2020,
  • [22] Combined Ray-Tracing and Physical-Optics Model for Flat-Aperture PPW Lens Antennas
    Chen, Mingzheng
    Mesa, Francisco
    Quevedo-Teruel, Oscar
    2024 18TH EUROPEAN CONFERENCE ON ANTENNAS AND PROPAGATION, EUCAP, 2024,
  • [23] Three-dimensional ray-tracing to model internal reflections in off-axis lens antennas
    Pavacic, AP
    del Río, DL
    Mosig, JR
    Eleftheriades, GV
    IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2006, 54 (02) : 604 - 612
  • [24] Ray tracing through arbitrary DOE based on Fermat's principle
    Zhao, LP
    Wu, MX
    Jin, GF
    Yan, WZ
    LENS DESIGN, ILLUMINATION, AND OPTOMECHANICAL MODELING, 1997, 3130 : 238 - 244
  • [25] Thin lens ray tracing
    Gatland, IR
    AMERICAN JOURNAL OF PHYSICS, 2002, 70 (12) : 1184 - 1186
  • [26] FERMAT PRINCIPLE, CAUSTICS, AND THE CLASSIFICATION OF GRAVITATIONAL LENS IMAGES
    BLANDFORD, R
    NARAYAN, R
    ASTROPHYSICAL JOURNAL, 1986, 310 (02): : 568 - 582
  • [27] Intraocular Lens Power Calculation by Ray-Tracing after Myopic Excimer Laser Surgery
    Savini, Giacomo
    Bedei, Andrea
    Barboni, Piero
    Ducoli, Pietro
    Hoffer, Kenneth J.
    AMERICAN JOURNAL OF OPHTHALMOLOGY, 2014, 157 (01) : 150 - 153
  • [28] Numerical Analysis of Dielectric Lens Antennas Using a Ray-Tracing Method and HFSS Software
    Zhang, Yunxiang
    Wang, Jian
    Zhao, Zhiqin
    Yang, Jianyu
    IEEE ANTENNAS AND PROPAGATION MAGAZINE, 2008, 50 (04) : 94 - 101
  • [29] Semi-analytical finite ray-tracing through the quadratic symmetric GRIN lens
    Flynn, Conor
    Goncharov, Alexander V.
    APPLIED OPTICS, 2024, 63 (01) : 290 - 298
  • [30] Radiation efficiency estimation of lossy geodesic lens antennas based on a ray-tracing technique
    Castillo-Tapia, Pilar
    Yang, Shiyi
    Mesa, Francisco
    Quevedo-Teruel, Oscar
    2023 17TH EUROPEAN CONFERENCE ON ANTENNAS AND PROPAGATION, EUCAP, 2023,