Abstract:
We have considered the simplest lens consisting of refractive and diffractive lenses, in which the shape of the diffractive lens compensates for the main geometric aberrations. We have considered a way to calculate such a system based on minimizing chromatic aberration. We presented the results of an experiment in which the modulation transfer function of a hybrid lens was directly determined.
The study was supported by the Russian Science Foundation (project no. 20-69-47110) in the part regarding the creation of diffractive lenses; Ministry of Science and Higher Education of the Russian Federation within execution of work on the State Assignment of the Federal Scientific Research Centre “Crystallography and Photonics” of the Russian Academy of Sciences (agreement no. 007-GZ/ChZ363/26) in the part regarding the study of formation of images with the use of a hybrid lens.
Citation:
R. V. Skidanov, S. V. Ganchevskaya, V. S. Vasilev, V. V. Podlipnov, “Experimental study of an image lens based on diffraction lenses for correct aberrations”, Optics and Spectroscopy, 129:4 (2021), 443–447; Optics and Spectroscopy, 129:5 (2021), 581–585
\Bibitem{SkiGanVas21}
\by R.~V.~Skidanov, S.~V.~Ganchevskaya, V.~S.~Vasilev, V.~V.~Podlipnov
\paper Experimental study of an image lens based on diffraction lenses for correct aberrations
\jour Optics and Spectroscopy
\yr 2021
\vol 129
\issue 4
\pages 443--447
\mathnet{http://mi.mathnet.ru/os152}
\crossref{https://doi.org/10.21883/OS.2021.04.50772.304-20}
\elib{https://elibrary.ru/item.asp?id=46486562}
\transl
\jour Optics and Spectroscopy
\yr 2021
\vol 129
\issue 5
\pages 581--585
\crossref{https://doi.org/10.1134/S0030400X21040251}
Linking options:
https://www.mathnet.ru/eng/os152
https://www.mathnet.ru/eng/os/v129/i4/p443
This publication is cited in the following 5 articles:
Sebastian A. Schulz, Rupert. F. Oulton, Mitchell Kenney, Andrea Alù, Isabelle Staude, Ayesheh Bashiri, Zlata Fedorova, Radoslaw Kolkowski, A. Femius Koenderink, Xiaofei Xiao, John Yang, William J. Peveler, Alasdair W. Clark, George Perrakis, Anna C. Tasolamprou, Maria Kafesaki, Anastasiia Zaleska, Wayne Dickson, David Richards, Anatoly Zayats, Haoran Ren, Yuri Kivshar, Stefan Maier, Xianzhong Chen, Muhammad Afnan Ansari, Yuhui Gan, Arseny Alexeev, Thomas F. Krauss, Andrea Di Falco, Sylvain D. Gennaro, Tomás Santiago-Cruz, Igal Brener, Maria V. Chekhova, Ren-Min Ma, Viola V. Vogler-Neuling, Helena C. Weigand, Ülle-Linda Talts, Irene Occhiodori, Rachel Grange, Mohsen Rahmani, Lei Xu, S. M. Kamali, E. Arababi, Andrei Faraon, Anthony C. Harwood, Stefano Vezzoli, Riccardo Sapienza, Philippe Lalanne, Alexandre Dmitriev, Carsten Rockstuhl, Alexander Sprafke, Kevin Vynck, Jeremy Upham, M. Zahirul Alam, Israel De Leon, Robert W. Boyd, Willie J. Padilla, Jordan M. Malof, Aloke, “Roadmap on photonic metasurfaces”, Applied Physics Letters, 124:26 (2024)
Serguei P. Murzin, “Computer Science Integrations with Laser Processing for Advanced Solutions”, Photonics, 11:11 (2024), 1082
P. E. Konoshenko, S. L. Mikerin, V. P. Korolkov, “Study of the Dependence of the Refractive Index of Exposed Positive Photoresists on the Conditions of Preliminary Heat Treatment”, Optoelectron.Instrument.Proc., 58:6 (2022), 643
Serguei P. Murzin, “Improvement of Thermochemical Processes of Laser-Matter Interaction and Optical Systems for Wavefront Shaping”, Applied Sciences, 12:23 (2022), 12133
Natalya A. Saprykina, “Virtual Light Environment of Underground Spaces: An Alternative to Interaction”, L&E, 2021, no. 06-2021, 69