Super-pupil beam engineering for enhanced confinement of azimuthally polarized depletion beams

Fluorescence depletion microscopy techniques require optical fields with a well-defined and spatially confined central intensity minimum to achieve sub-diffraction lateral resolution. Here, we present the design and experimental implementation of an azimuthally polarized, doughnut-shaped depletion beam based on super-pupil engineering principles. By tailoring the radial amplitude distribution at the entrance pupil to approximate a Bessel-type target function, the resulting focal field exhibits a tighter central doughnut compared to conventional circularly or azimuthally polarized beams. The designed pupil field distribution is implemented using a phase-only spatial light modulator operated in a double-pass configuration, enabling independent modulation of orthogonal polarization components via complex-field holographic encoding. Analytical modeling of the designed field predicts an estimated resolution gain of approximately 24% and a reduction in required depletion power of approximately 42% relative to a canonical circularly polarized Laguerre-Gaussian beam. Although the engineered field exhibits pronounced sidelobes, these do not preclude its use as a depletion beam, since lateral resolution is strongly influenced by the spatial confinement and effective suppression of the central intensity minimum for a given depletion intensity. This suggests that the proposed beam may provide improved depletion efficiency through enhanced focal confinement, offering a flexible and experimentally accessible approach to depletion beam engineering for reconfigurable super-resolution microscopy systems.

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Publication Details

Journal
Optics & Laser Technology
Published
2026-09-16
DOI
https://doi.org/10.1016/j.optlastec.2026.116365
Primary Topic
Orbital Angular Momentum in Optics
Type
article
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article

Super-pupil beam engineering for enhanced confinement of azimuthally polarized depletion beams

R. Martı́nez-Herrero, Jordi Tiana‐Alsina, Mario Montes‐Usategui, Costanza Agazzi et al.
Optics & Laser Technology
Orbital Angular Momentum in Optics
article

Super-pupil beam engineering for enhanced confinement of azimuthally polarized depletion beams

R. Martı́nez-Herrero, Jordi Tiana‐Alsina, Mario Montes‐Usategui, Costanza Agazzi, David Maluenda, Artur Carnicer, Estela Martı́n-Badosa, Nick Toledo-García
article en

Abstract

Fluorescence depletion microscopy techniques require optical fields with a well-defined and spatially confined central intensity minimum to achieve sub-diffraction lateral resolution. Here, we present the design and experimental implementation of an azimuthally polarized, doughnut-shaped depletion beam based on super-pupil engineering principles. By tailoring the radial amplitude distribution at the entrance pupil to approximate a Bessel-type target function, the resulting focal field exhibits a tighter central doughnut compared to conventional circularly or azimuthally polarized beams. The designed pupil field distribution is implemented using a phase-only spatial light modulator operated in a double-pass configuration, enabling independent modulation of orthogonal polarization components via complex-field holographic encoding. Analytical modeling of the designed field predicts an estimated resolution gain of approximately 24% and a reduction in required depletion power of approximately 42% relative to a canonical circularly polarized Laguerre-Gaussian beam. Although the engineered field exhibits pronounced sidelobes, these do not preclude its use as a depletion beam, since lateral resolution is strongly influenced by the spatial confinement and effective suppression of the central intensity minimum for a given depletion intensity. This suggests that the proposed beam may provide improved depletion efficiency through enhanced focal confinement, offering a flexible and experimentally accessible approach to depletion beam engineering for reconfigurable super-resolution microscopy systems.

Optics & Laser TechnologyVol. 204
Universidad Complutense de Madrid (ES), Institut de Nanociència i Nanotecnologia de la Universitat de Barcelona, Universitat de Barcelona (ES)
Openalex Percentile: Top 13%
Orbital Angular Momentum in Optics
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