Formation of Vortex Annular Light Beams with Suppression Divergence
Abstract
Vortex Bessel beams (VBBs) generated by an optical system consisting of two axicons with a small difference in cone angles and a spiral phase plate are studied using analytical and numerical methods. A method for producing vortex annular beams is proposed based on apexing the VBBs at the first minimum of the intensity distribution. It is shown that, compared to nonvortex annular beams of the same power generated by a two-axicon system, these beams are characterized by a single ring maximum in the transversal intensity distribution and suppressed diffraction divergence of the axial minimum. It is established that apexing the VBBs at the second minimum enables the formation of light beams whose diffraction broadening of the axial minimum is negligible at distances up to hundreds of meters. The suppressed diffraction broadening of the axial minimum dimensions at significant distances expands the possibilities of practical application of the proposed vortex ring beams to areas where stable singularities of the wave field are needed, in particular, for quantum information encoding, data transmission in free space, and for three-dimensional nanoscopy.
About the Authors
S. N. KurilkinaBelarus
Minsk
V. I. Kazakov
Russian Federation
St. Petersburg
References
1. K. Shimoda. J. Phys. Soc. Jpn, 60 (1991) 450—454
2. A. M. Bel’sky. Bull. BSU, N 2 (1995) 8—10]
3. R. Grunwald. Thin-Film Microoptics — New Frontiers of Spatio-Temporal Beam Shaping, Amsterdam, Elsevier (2007)
4. R. Grunwald, M. Bock. Adv. Phys. X, 5 (2020) 1736950
5. S. N. Kurilkina, S. N. Dovydenko. J. Appl. Spectr., 92, N 5 (2025) 668—673], doi: 10.1007/s10812-025-02004-x
6. J. Yang, L. Gong, Y. Shen, L. V. Wang. Appl. Phys. Lett., 113 (2018) 181104
7. T. Grosjean, D. Courjan, D. V. Labeke. J. Microsc., 210 (2003) 319—323
8. Y. Chen, A. Glaser, J. T. Liu. J. Biophoton., 10 (2016) 68—74
9. M. Rioux, R. Tremblay, P. A. Bélanger. Appl. Opt., 17 (1978) 1532—1536
10. M. Duocastella, C. B. Arnold. Laser Phot. Rev., 6 (2012) 607—621
11. R. Meyer, L. Froehly, R. Giust, J. Del Hoyo, L. Furfaro, C. Billet, F. Courvoisier. Appl. Phys. Lett., 114 (2019) 201105
12. R. Drevinskas, J. Zhang, M. Beresna, M. Gecevičius, A. G. Kazanskii, Y. P. Svirko, P. G. Kazansky. Appl. Phys. Lett., 108 (2016) 221107
13. G. Fuxi, W. Yang. Data Storage at the Nanoscale. Boca Raton, CRC Press, Taylor & Francis (2015) 26—28
14. H. Little, C. T. A. Brown, V. Garcés-Chávez, W. Sibbett, K. Dholakia. Opt. Express, 12 (2004) 2560—2563
15. Y. Qian, L. Dong, H. Mao. IEEE Photonics J., N 4 (2017) 1—11
16. D. Stevenson, B. Agate, X. Tsampoula, P. Fischer, C. T. A. Brown, W. Sibbett, A. Riches, F. GunnMoore, K. Dholakia. Opt. Express, 14 (2006) 7125—7133
17. E. Yew, C. Sheppard. Opt. Express, 14 (2006) 1167—1174
18. Y. Li, Q. Zhang, W. Hong. Opt. Express, 20 (2012) 15427—15439
19. G. Rui, X. Wang, Y. Cui. Opt. Express, 23 (2015) 25707—25716
20. Y. Shen, X. Yang, R. Qi, Z. Wan, X. Fu, M. Gong. Biomed. J. Sci. Tech. Res., 9 (2018) 5
21. X. Wang, Y. Song, F. Pang, Y. Li, Q. Zhang, L. Zhuang, Y. Yang. Opt. Commun., 472 (2020) 125909
22. F. O. Fahrbach, P. Simon, A. Rohrbach. Nature Photon., N 11 (2010) 780—785
23. M. Duocastella, C. B. Arnold. Laser Photon. Rev., N 5 (2012) 607—621
24. G. Anzolin, F. Tamburini, A. Bianchini, G. Umbriaco, C. Barbieri. Astronomy Astrophys., 488 (2008) 1159—1165
25. M. K. Al-Muhanna, S. N. Kurilkina, V. N. Belyi, N. S. Kazak. J. Optics, 13 (2011) 105703
26. S. D. Algazin. Izvestiya Tula State University, N 1 (2013) 132—141]
Review
For citations:
Kurilkina S.N., Kazakov V.I. Formation of Vortex Annular Light Beams with Suppression Divergence. Zhurnal Prikladnoii Spektroskopii. 2026;93(5):696-701. (In Russ.)
JATS XML





















