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Exact analytical solutions for micrometer structured vortex beams with applications to optical tweezers

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Author(s):
Nobre-Pereira, J. ; de Angelis, V. S. ; Ambrosio, L. A. ; Zamboni-Rached, M.
Total Authors: 4
Document type: Journal article
Source: OPTICS AND LASER TECHNOLOGY; v. 171, p. 9-pg., 2023-11-21.
Abstract

Bessel beams are widely known by their non-diffracting properties, i.e. beams that sustain their transverse profile along the propagation. It is also well known that by a suitable superposition of Bessel beams of the same frequency, but different longitudinal wave numbers, amplitudes and phases, it is possible to obtain a resulting beam whose longitudinal intensity pattern can be shaped along the propagation z-axis. Such approach, named Frozen Wave method, can be implemented through discrete or continuous superposition, the latter being more appropriate for obtaining spatially structured beams in micrometer domains. In previous studies, authors constructed analytical solutions for micrometer zero-order (i.e., null topological charge) Frozen Wave and, thereafter, of order one and two, by making use of a topological charge raising operator. In this paper, we present an analytical closed solution for the general case where the topological charge raising operator is applied an arbitrary number of times to a micrometer zero-order Frozen Wave beam, thus generating one of arbitrary topological charge. We also apply the new solutions to model optical tweezers (in Rayleigh regime) considering different light polarizations. (AU)

FAPESP's process: 21/06121-0 - Electromagnetic wave propagation through complex structures
Grantee:Ben-Hur Viana Borges
Support Opportunities: Regular Research Grants
FAPESP's process: 20/05280-5 - Frozen wave-type structured beams: theoretical and experimental aspects in 2D and 3D imaging, optical tweezers and in photophoretic traps for application in optical trapping displays
Grantee:Leonardo Andre Ambrosio
Support Opportunities: Regular Research Grants
FAPESP's process: 21/04911-4 - Structured light: controlling the intensity, phase, topological charge, trajectory and branching of optical beams and pulses in free space and material media
Grantee:Michel Zamboni Rached
Support Opportunities: Regular Research Grants