Preview

Journal of Instrument Engineering

Advanced search
Open Access Open Access  Restricted Access Subscription Access

Refinement of the Calculation Method for an Achromatic Lens with an Operating Spectral Range from Ultraviolet to Near Infrared

https://doi.org/10.17586/0021-3454-2025-68-8-704-714

Abstract

Additional design stages introduced into the development process of wide-spectrum refractive lenses operating in the spectral range from ultraviolet to near infrared are considered. Such lenses are in demand in luminescent analysis tasks. Additions to the lens calculation method include: the formation of a catalog of optical materials for calculation in a given spectral range; the determination of the possibility of gluing components during the formation of the basic scheme; refinement of the nomogram method to select optimal combinations of materials that meet the requirements of achromatization and athermalization, and a wide operating spectral range. The augmented method allows the design of wide-spectrum lenses for luminescent analysis.

About the Authors

A. V. Uvarova
ITMO University
Russian Federation

Alla V. Uvarova — Center for Applied Optics; Engineer

St. Petersburg



A. V. Bakholdin
ITMO University
Russian Federation

Alexey V. Bakholdin — PhD, Associate Professor; Center for Applied Optics; Director of the Center

St. Petersburg



References

1. Kushnir V.M., Povazhnyy V.V., Berdnikov S.V. Morskoy gidrofizicheskiy zhurnal, 2014, no. 2, pp. 22–31. (in Russ.)

2. Khan A., Vibhute A.D., Mali Sh. et al. Ecological Informatics, 2022, vol. 69, рр. 101678, DOI: 10.1016/j.ecoinf.2022.101678.

3. Lipatov A.N., Ekonomov A.P., Makarov V.S., Zakharkin G.V., Bogachev D.L., Rumyantsev D.M., Antonenko S.A. Journal of Instrument Engineering, 2014, no. 3(57), pp. 73–78. (in Russ.)

4. Ponin O.V., Sharov A.A., Arkhipova L.N., Demidova E.A., Tarabukin V.V. Journal of Optical Technology, 2013, no. 4(80), pp. 230–232.

5. Ivanov Y.S., Sinyavskiǐ I.I., Sosonkin M.G. Journal of Optical Technology, 2006, no. 12(73), pp. 879–882.

6. Batshev V.I., Krioukov A.V., Machikhin A.S., and Zolotukhina A.A. Journal of Optical Technology, 2024, no. 11(90), pp. 706–712, https://doi.org/10.1364/JOT.90.000706.

7. CCD area image sensor S7170-0909, https://www.hamamatsu.com/eu/en/product/optical-sensors/image-sensor/ccd-cmos-nmos-image-sensor/area-sensor/for-scientific-measurement/S7170-0909.html.

8. Latyev S.M. Konstruirovaniye tochnykh (opticheskikh) priborov (Design of Precision (Optical) Devices), St. Petersburg, 2015, 560 р. (in Russ.)

9. Churilovsky V.N. Obshchaya teoriya opticheskikh priborov (General Theory of Optical Devices), Moscow, Leningrad, 1960, 140 р. (in Russ.)

10. General-purpose SWIR Image Sensor, https://www.sony-semicon.com/en/products/is/industry/swir/imx990-991.html.

11. InGaAs area image sensor G14673-0808W, https://www.hamamatsu.com/eu/en/product/optical-sensors/image-sensor/ingaas-image-sensor/ingaas-area-image-sensor/G14673-0808W.html.

12. Volosov D.S. Fotograficheskaya optika: teoriya, osnovy proyektirovaniya, opticheskiye kharakteristiki (Photographic Optics: Theory, Design Principles, Optical Characteristics) Moscow, 1978, 543 р. (in Russ.)

13. Ivanov S.E. and Romanova G.E. Journal of Optical Technology, 2016, no. 12(83), pp. 729–733, https://doi.org/10.1364/JOT.83.000729.

14. Tamagawa Y. Applied Optics, 1994, vol. 33, pp. 8009–8013.

15. Tamagawa Y., Tajime T. Optical Engineering, 1996, no. 10(35), pp. 3001–3006.

16. http://lzos.ru/press-zentr/materials/catalog-opticheskogo-stekla/. (in Russ.)

17. Optical Glass for Polished Lenses, Optical Glass for Molded Aspherical Lenses (Low Tg Optical Glass), https://www.ohara-inc.co.jp/en/product/catalog/.

18. Optical Glass, https://www.schott.com/shop/advanced-optics/en/Optical-Glass/c/optical-glass.

19. Optical Glass Materials, https://www.sumita-opt.co.jp/en/products/optical.html.

20. Optical Glass Catalogue, https://www.hoyaoptics.eu/download/optical-glass-catalogue.

21. glassBank, http://glassbank.ifmo.ru/rus/index.php.

22. Nguyen D.H., Bobe A., Voznesenskaya A., and Bakholdin A. Proc. SPIE, 2023, vol. 12765, Optical Design and Testing XIII, рр. 1276513, https://doi.org/10.1117/12.2685549.


Review

For citations:


Uvarova A.V., Bakholdin A.V. Refinement of the Calculation Method for an Achromatic Lens with an Operating Spectral Range from Ultraviolet to Near Infrared. Journal of Instrument Engineering. 2025;68(8):704-714. (In Russ.) https://doi.org/10.17586/0021-3454-2025-68-8-704-714

Views: 26


ISSN 0021-3454 (Print)
ISSN 2500-0381 (Online)