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ЖУРНАЛЫ // Компьютерная оптика

Компьютерная оптика, 2023, том 47, выпуск 5, страницы 734–741 (Mi co1174)

Расчет тремя методами интенсивности цилиндрического векторного пучка в остром фокусе
А. Г. Налимов, В. В. Котляр, Ю. В. Ханенко

Список литературы

1. Goodman JW, Introduction to Fourier optics, 3rd, Roberts & Company Publishers, Greenwood Village, 2005
2. Ersoy OK, Diffraction, Fourier optics and imaging, John Wiley & Sons Inc, Hoboken, NJ, 2007  mathscinet  zmath
3. Lee J-Y, Greengard L, “The type 3 nonuniform FFT and its applications”, J Comput Phys, 206:1 (2005), 1–5  crossref  mathscinet  zmath
4. Greengard L, Lee JY, “Accelerating the nonuniform fast Fourier transform”, SIAM Rev, 46:3 (2004), 443–454  crossref  mathscinet  zmath
5. Long J, Cai P, Liu C, Qu W, Yan H, “Aperture synthesis based solely on phase images in digital holography”, Chin Opt Lett, 19:7 (2021), 070501  crossref
6. Xiao L, Qin Y, Tang X, Wan C, Li G, Zhong L, “Beam shaping characteristics of an unstable-waveguide hybrid resonator”, Appl Opt, 53:10 (2014), 2213–2219  crossref
7. Wu C, Ko J, Rzasa JR, Paulson DA, Davis CC, “Phase and amplitude beam shaping with two deformable mirrors implementing input plane and Fourier plane phase modifications”, Appl Opt, 57:9 (2018), 2337–2345  crossref
8. Skidanov RV, Rykov MA, Innacchione GS, Krivoshlykov SG, “The modification of laser beam for optimization of optical trap force characteristics”, Computer Optics, 36:3 (2012), 377–386
9. Soifer VA, Kotlyar VV, Doskolovich LL, “Diffractive optical elements in nanophotonics devices”, Computer Optics, 33:4 (2009), 352–368
10. Kotlyar VV, Nalimov AG, Stafeev SS, O'Faolain L, Kotlyar MV, “Thin metalens with high numerical aperture”, Computer Optics, 41:1 (2017), 5–12  crossref
11. Tu X, Wang Y, Guo Z, Chen Z, Huang T, Wu X, Luo W, “Underwater acoustic wave detection based on packaged optical microbubble resonator”, J Lightw Technol, 40:18 (2022), 6272–6279  crossref
12. Tsuji Y, Koshiba M, “Finite element method using port truncation by perfectly matched layer boundary conditions for optical waveguide discontinuity problems”, J Lightw Technol, 20:3 (2002), 463–468  crossref
13. Koshiba M, Optical waveguide theory by the finite element method, KTK Scientific, Tokyo, 1992, pages 43–47
14. Bendickson JM, Glytsis EN, Gaylord TK, “Scalar integral diffraction methods: unification, accuracy, and comparison with a rigorous boundary element method with application to diffractive cylindrical lenses”, J Opt Soc Am A, 15:7 (1998), 1822–1837  crossref  mathscinet
15. Kojima T, Ido J, “Boundary-element method analysis of light-beam scattering and the sum and differential signal output by DRAW-type optical disk models”, Electron Commun Jpn Pt 2 Electron, 74:5 (1991), 11–20  crossref
16. Hirayama K, Glytsis EN, Gaylord TK, “Rigorous electromagnetic analysis of diffractive cylindrical lenses”, J Opt Soc Am A, 13:11 (1996), 2219–2231  crossref
17. Yee KS, “Numerical solution of initial boundary value problems involving Maxwell's equations in isotropic media”, IEEE Trans Antennas Propag, AP-14:3 (1966), 302–307  crossref  zmath
18. Taflove A, Hagness SC, Computational electrodynamics: the finite-difference time-domain method, Artech House, Norwood, MA, 2000  mathscinet  zmath
19. Sommerfeld, A, Lectures on theoretical physics, Academic Press, New York, 1954, pages 361–373  mathscinet  zmath
20. Khonina SN, Kharitonov SI, “Analogue of Rayleigh-Sommerfeld integral for anisotropic and gyrotropic media”, Computer Optics, 36:2 (2012), 172–182  mathscinet
21. Goodman JW, Introduction to Fourier optics, 2nd, McGraw-Hill, 1996
22. Matsushima K, Shimobaba T, “Band-limited angular spectrum method for numerical simulation of free-space propagation in far and near fields”, Opt Express, 17:22 (2009), 19662–19673  crossref
23. Kim Y-H, Byun C-W, Oh H, Lee J, Pi J-Y, Kim GH, Lee M-L, Ryu H, Chu H-Y, Hwang C-S, “Non-uniform sampling and wide range angular spectrum method”, J Opt, 16:2 (2014), 125710  crossref
24. Zhang W, Zhang H, Jin G, “Band-extended angular spectrum method for accurate diffraction calculation in a wide propagation range”, Opt Lett, 45:6 (2020), 1543–1546  crossref
25. Richards B, Wolf E, “Electromagnetic diffraction in optical systems, II. Structure of the image field in an aplanatic system”, Proc R Soc Lond A, 253:1274 (1959), 358–379  crossref  mathscinet  zmath
26. Siraji AA, Zhao Y, “Design and analysis of thin optical lens composed of low-index subwavelength structures”, Appl Opt, 58:17 (2019), 4654–4664  crossref
27. Yin S, Zhou C, Luo X, Du C, “Imaging by a sub-wavelength metallic lens with large field of view”, Opt Express, 16:4 (2008), 2578–2583  crossref
28. Stafeev SS, Nalimov AG, Kotlyar MV, O'Faolain L, “A four-zone reflective azimuthal micropolarizer”, Computer Optics, 39:5 (2015), 709–715  crossref
29. Zhang W, Zhang, Sheppard CJR, Jin G, “Analysis of numerical diffraction calculation methods: from the perspective of phase space optics and the sampling theorem”, J Opt Soc Am A, 37:11 (2020), 1748–1766  crossref  mathscinet
30. Nalimov AG, Khonina SN, “Comparison of simulation methods of X-ray propagation through DOE in paraxial area”, Izvestia of Samara Scientific Center of the Russian Academy of Sciences, 12:4 (2010), 26–31
31. Kovalev AA, Kotlyar VV, “Spin Hall effect of double-index cylindrical vector beams in a tight focus”, Micromachines, 14:2 (2023), 494  crossref


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