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ЖУРНАЛЫ // Компьютерная оптика

Компьютерная оптика, 2023, том 47, выпуск 5, страницы 742–750 (Mi co1175)

Исследование методом FDTD поляризационных преобразований, осуществляемых преломляющим биконическим аксиконом
П. А. Хорин, А. М. Алгубили, С. А. Дегтярев, С. К. Сергунин, С. В. Карпеев, С. Н. Хонина

Список литературы

1. Goldstein DH, Polarized light, CRC Press, Boca Raton, FL, 2003
2. Freund I, “Polarization flowers”, Opt Commun, 199:1–4 (2001), 47–63  crossref
3. Maurer C, Jesacher A, Fürhapter S, Bernet S, Ritsch-Marte M, “Tailoring of arbitrary optical vector beams”, New J Phys, 9 (2007), 78  crossref
4. Wang XL, Li Y, Chen J, Guo CS, Ding J, Wang HT, “A new type of vector fields with hybrid states of polarization”, Opt Express, 18:10 (2010), 10786–10795  crossref
5. Khonina, SN, Karpeev SV, “Grating-based optical scheme for the universal generation of inhomogeneously polarized laser beams”, Appl Opt, 49:10 (2010), 1734–1738  crossref
6. Zhu W, She W, “Generation of tunable three-dimensional polarization in 4Pi focusing system”, Opt Express, 21:14 (2013), 17265–17274  crossref
7. Rong ZY, Han YJ, Wang SZ, Guo CS, “Generation of arbitrary vector beams with cascaded liquid crystal spatial light modulators”, Opt Express, 22:2 (2014), 1636–1644  crossref
8. Liu Z, Liu Y, Ke Y, Liu Y, Shu W, Luo H, Wen S, “Generation of arbitrary vector vortex beams on hybrid-order Poincaré sphere”, Photon Res, 5:1 (2017), 15–21  crossref
9. Bauer T, Banzer P, Bouchard F, Orlov S, Marrucci L, Karimi E, Leuchs G, “Multi-twist polarization ribbon topologies in highly-confined optical fields”, New J Phys, 21 (2019), 053020  crossref
10. Khonina SN, Ustinov AV, Porfirev AP, “Vector Lissajous laser beams”, Opt Lett, 45:15 (2020), 4112–4115  crossref
11. Zhong RY, Zhu ZH, Wu HJ, Rosales-Guzmán C, Song SW, Shi BS, “Gouy-phase-mediated propagation variations and revivals of transverse structure in vectorially structured light”, Phys Rev A, 103:5 (2021), 053520  crossref
12. Khonina SN, Porfirev AP, “Harnessing of inhomogeneously polarized Hermite–Gaussian vector beams to manage the 3D spin angular momentum density distribution”, Nanophotonics, 11:4 (2022), 697–712  crossref
13. Milione G, Nguyen TA, Leach J, Nolan DA, Alfano RR, “Using the nonseparability of vector beams to encode information for optical communication”, Opt Lett, 40:21 (2015), 4887–4890  crossref
14. Akent'ev AS, Sadovnikov MA, Sokolov AL, Simonov GV, “Polarization analysis of the beam-steering device of quantum optical systems”, Opt Spectrosc, 122:6 (2017), 1008–1014  crossref
15. Ndagano B, Nape I, Cox MA, Rosales-Guzman C, Forbes A, “Creation and detection of vector vortex modes for classical and quantum communication”, J Lightwave Technol, 36:2 (2018), 292–301  crossref
16. Karpeev SV, Podlipnov VV, Khonina SN, Ivliev NA, Ganchevskay SV, “Free-space transmission and detection of variously polarized near-IR beams using standard communication systems with embedded singular phase structures”, Sensors, 22:3 (2022), 890–907  crossref
17. Oron D, Tal E, Silberberg Y, “Depth-resolved multiphoton polarization microscopy by third-harmonic generation”, Opt Lett, 28:23 (2003), 2315–2317  crossref
18. Serrels K, Ramsay E, Warburton R, Reid D, “Nanoscale optical microscopy in the vectorial focusing regime”, Nat Photonics, 2:5 (2008), 311–314  crossref
19. Kenny F, Lara D, Rodríguez-Herrera O, Dainty C, “Complete polarization and phase control for focus-shaping in high-NA microscopy”, Opt Express, 20:13 (2012), 14015–14029  crossref
20. Skelton S, Sergides M, Saija R, Iati M, Marago O, Jones P, “Trapping volume control in optical tweezers using cylindrical vector beams”, Opt Lett, 38:1 (2013), 28–30  crossref
21. Otte E, Denz C, “Optical trapping gets structure: Structured light for advanced optical manipulation”, Appl Phys Rev, 7:4 (2020), 041308  crossref
22. Yang Y, Ren Y, Chen M, Arita Y, Rosales-Guzmán C, “Optical trapping with structured light: A review”, Adv Photonics, 3 (2021), 034001  crossref
23. Gorodetski Y, Niv A, Kleiner V, Hasman E, “Observation of the spin-based plasmonic effect in nanoscale structures”, Phys Rev Lett, 101:4 (2008), 043903  crossref
24. Beresna M, Gecevic̆ius M, Kazansky PG, Gertus T, “Radially polarized optical vortex converter created by femtosecond laser nanostructuring of glass”, Appl Phys Lett, 98:20 (2011), 201101  crossref
25. Müller T, Schumann C, Kraegeloh A, “STED Microscopy and its applications: New insights into cellular processes on the nanoscale”, Chemphyschem, 13:8 (2012), 1986–2000  crossref
26. Khonina SN, Golub I, “How low can STED go? Comparison of different write-erase beam combinations for stimulated emission depletion microscopy”, J Opt Soc Am A, 29:10 (2012), 2242–2246  crossref
27. Varin C, Payeur S, Marceau V, et al., “Direct electron acceleration with radially polarized laser beams”, Appl Sci, 3:1 (2013), 70–93  crossref  mathscinet
28. Ni J, Wang C, Zhang C, Hu Y, Yang L, Lao Z, Chu J, “Three-dimensional chiral microstructures fabricated by structured optical vortices in isotropic material”, Light Sci Appl, 6:7 (2017), e17011  crossref
29. Syubaev SA, Zhizhchenko AY, Pavlov DV, Gurbatov SO, Pustovalov EV, Porfirev AP, Khonina SN, Kulinich SA, Rayappan JBB, Kudryashov SI, Kuchmizhak AA, “Plasmonic nanolenses produced by cylindrical vector beam printing for sensing applications”, Sci Rep, 9 (2019), 19750  crossref
30. Porfirev A, Khonina S, Meshalkin A, Ivliev N, Achimova E, Abashkin V, Prisacar A, Podlipnov V, “Two-step maskless fabrication of compound fork-shaped gratings in nanomultilayer structures based on chalcogenide glasses”, Opt Lett, 46:13 (2021), 3037–3040  crossref
31. Masuda K, Nakano S, Barada D, Kumakura M, Miyamoto K, Omatsu T, “Azo-polymer film twisted to form a helical surface relief by illumination with a circularly polarized Gaussian beam”, Opt Express, 25:11 (2017), 12499–12507  crossref
32. Khonina SN, Ustinov AV, Volotovskiy SG, Ivliev NA, Podlipnov VV, “Influence of optical forces induced by paraxial vortex Gaussian beams on the formation of a microrelief on carbazole-containing azopolymer films”, Appl Opt, 59:29 (2020), 9185–9194  crossref
33. Kharintsev SS, Fishman AI, Kazarian SG, Salakhov MK, “Polarization of near-field light induced with a plasmonic nanoantenna”, Phys Rev B, 92:11 (2015), 115113  crossref
34. Masuda K, Shinozaki R, Shiraishi A, Ichijo M, Yamane K, Miyamoto K, Omatsu T, “Picosecond optical vortex-induced chiral surface relief in an azo-polymer film”, J Nanophoton, 14 (2020), 016012  crossref
35. Ferrer-Garcia MF, Alvandi Y, Zhang Y, Karimi E, “Theoretical analysis on spatially structured beam induced mass transport in azo-polymer films”, Opt Express, 28:14 (2020), 19954–19965  crossref
36. Tidwell SC, Ford DH, Kimura WD, “Generating radially polarized beams interferometrically”, Appl Opt, 29:15 (1990), 2234–2239  crossref
37. Passilly N, de Saint DR, A\"it-Ameur K, Treussart F, Hierle R, Roch JF, “Simple interferometric technique for generation of a radially polarized light beam”, J Opt Soc Am A, 22:5 (2005), 984–991  crossref
38. Liu S, Li P, Peng T, Zhao J, “Generation of arbitrary spatially variant polarization beams with a trapezoid Sagnac interferometer”, Opt Express, 20:19 (2012), 21715–21721  crossref
39. Khonina SN, Karpeev SV, “Generating inhomogeneously polarized higher-order laser beams by use of diffractive optical elements”, J Opt Soc Am A, 28:10 (2011), 2115–2123  crossref
40. Sokolov AL, Murashkin VV, “Diffraction polarization optical elements with radial symmetry”, Opt Spectrosc, 111 (2011), 859–865  crossref
41. Porfirev AP, Ustinov AV, Khonina SN, “Polarization conversion when focusing cylindrically polarized vortex beams”, Sci Rep, 6 (2016), 6  crossref
42. Moreno I, Davis JA, Hernandez TM, Cottrell DM, Sand D, “Complete polarization control of light from a liquid crystal spatial light modulator”, Opt Express, 20:1 (2012), 364–376  crossref
43. Karpeev SV, Podlipnov VV, Algubili AM, “An interference scheme for generating inhomogeneously polarized laser radiation using a spatial light modulator”, Computer Optics, 44:2 (2020), 214–218  crossref
44. Bomzon Z, Biener G, Kleiner V, Hasman E, “Radially and azimuthally polarized beams generated by space-variant dielectric subwavelength gratings”, Opt Lett, 27:5 (2002), 285–287  crossref
45. Lerman GM, Levy U, “Generation of a radially polarized light beam using space-variant subwavelength gratings at 1064 nm”, Opt Lett, 33:23 (2008), 2782–2784  crossref
46. Rubin NA, Zaidi A, Juhl M, Li RP, Devlin RC, Leosson K, Capasso F, “Polarization state generation and measurement with a single metasurface”, Opt Express, 26:17 (2018), 21455–21478  crossref
47. Khonina SN, Degtyarev SA, Ustinov AV, Porfirev AP, “Metalenses for the generation of vector Lissajous beams with a complex Poynting vector density”, Opt Express, 29:12 (2021), 18651–18662  crossref
48. Machavariani G, Lumer Y, Moshe I, Meir A, Jackel S, Davidson N, “Birefringence-induced bifocusing for selection of radially or azimuthally polarized laser modes”, Appl Opt, 46:16 (2007), 3304–3310  crossref
49. Karpeev SV, Podlipnov VV, Khonina SN, Paranin VD, Tukmakov KN, “Anisotropic diffractive optical element for generating hybrid-polarized beams”, Opt Eng, 58:8 (2019), 082402  crossref
50. Loussert C, Brasselet E, “Efficient scalar and vectorial singular beam shaping using homogeneous anisotropic media”, Opt Lett, 35:1 (2010), 7–9  crossref
51. Fadeyeva TA, Shvedov VG, Izdebskaya YV, Volyar AV, Kivshar YS, “Spatially engineered polarization states and optical vortices in uniaxial crystals”, Opt Express, 18:10 (2010), 10848–10863  crossref
52. Khonina SN, Karpeev SV, Paranin VD, Morozov AA, “Polarization conversion under focusing of vortex laser beams along the axis of anisotropic crystals”, Phys Lett A, 381:30 (2017), 2444–2455  crossref  mathscinet
53. Khonina SN, Porfirev AP, Kazanskiy NL, “Variable transformation of singular cylindrical vector beams using anisotropic crystals”, Sci Rep, 10:1 (2020), 5590  crossref
54. Tovar AA, “Production and propagation of cylindrically polarized Laguerre–Gaussian laser beams”, J Opt Soc Am A, 15:10 (1998), 2705–2711  crossref  mathscinet
55. Kozawa Y, Sato S, “Generation of a radially polarized laser beam by use of a conical Brewster prism”, Opt Lett, 30:22 (2005), 3063–3065  crossref
56. Radwell N, Hawley RD, Gotte JB, Franke-Arnold S, “Achromatic vector vortex beams from a glass cone”, Nat Commun, 7 (2016), 10654  crossref
57. Khonina S, Degtyarev S, Savelyev D, Ustinov A, “Focused, evanescent, hollow, and collimated beams formed by microaxicons with different conical angles”, Opt Express, 25:16 (2017), 19052–19064  crossref
58. Savelyev DA, Degtyarev SA, “Investigation of vortex evanescent fields in the near zone of fiber taper and sub-wavelength diffractive axicon”, Proc SPIE, 10774 (2018), 107740J  crossref
59. Savelyev DA, “Diffraction of the Gaussian beam on layered lens and similar a conical and diffraction axicons”, CEUR Workshop Proc, 1638 (2016), 117–124  crossref
60. Zhang Y, Zeng A, Wang Y, Huang HA, “Method for measuring the base angle of axicon lens based on chromatic dispersion”, Opt Commun, 346 (2015), 69–73  crossref
61. Wei Z, Yuan Q, Ma X, Hu J, Zeng A, Huang H, “Measurement of base angle of an axicon lens based on autocollimation optical path”, Opt Commun, 434 (2019), 23–27  crossref
62. Skidanov RV, Morozov AA, “Diffractive optical elements for forming radially polarized light, based on the use stack of Stoletov”, Computer Optics, 38:4 (2014), 614–618  crossref
63. Karpeev SV, Paranin VD, Khonina SN, “Generation of a controlled double-ring-shaped radially polarized spiral laser beam using a combination of a binary axicon with an interference polarizer”, J Opt, 19:5 (2017), 055701  crossref
64. Degtyarev SA, Karpeev SV, Ivliev NA, Podlipnov VV, Khonina SN, “Refractive bi-conic axicon (volcone) for polarization conversion of monochromatic radiation”, Photonics, 9:6 (2022), 421  crossref
65. Gubaev MS, Savelyev DA, Strelkov YS, Degtyarev SA, “Polarization transformation with refractive axicon”, 2021 Photonics & Electromagnetics Research Symposium (PIERS), 2021, 867–876  crossref
66. Gubaev MS, Degtyarev SA, Strelkov YS, Volotovsky SG, Ivliev NA, Khonina SN, “Vectorial beam generation with a conical refractive surface”, Computer Optics, 45:6 (2021), 828–838  crossref
67. Khonina SN, Tukmakov KN, Degtyarev SA, Reshetnikov AS, Pavelyev VS, Choporova YY, “Design, fabrication and investigation of a subwavelength axicon for terahertz beam polarization transforming”, Computer Optics, 43:5 (2019), 756–764  crossref
68. Pavelyev VS, Degtyarev SA, Tukmakov KN, Knyazev BA, Choporova YY, “Silicon subwavelength axicons for terahertz beam polarization transformation”, J Phys: Conf Ser, 1745:1 (2021), 012022  crossref
69. Khonina SN, “Vortex beams with high-order cylindrical polarization: Features of focal distributions”, Appl Phys B, 125 (2019), 100  crossref
70. Kharitonov SI, Khonina SN, “Conversion of a conical wave with circular polarization into a vortex cylindrically polarized beam in a metal waveguide”, Computer Optics, 42:2 (2018), 197–211  crossref
71. Helseth LE, “Roles of polarization, phase and amplitude in solid immersion lens system”, Opt Commun, 191:3–6 (2001), 161–172  crossref
72. Khonina SN, Golub I, “Optimization of focusing of linearly polarized light”, Opt Lett, 36:3 (2011), 352–354  crossref


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