Generation and manipulation of frequency-converted Airy vortex beam via atomic four-wave mixing

Airy vortex beams, which integrate orbital angular momentum with diffraction-resistant and self-accelerating characteristics of Airy beams, offer unique capabilities for high-capacity optical communication and high-resolution imaging. Here, we experimentally demonstrate the generation and manipulation of frequency-converted Airy vortex beams through four-wave mixing in hot Rb vapor. A 780 nm vortex beam and a 776 nm two-dimensional Airy beam coherently participate in the four-wave mixing process, generating a 420 nm output beam that combines the orbital angular momentum of the vortex beam with the spatial structure of the Airy beam. The generated beam exhibits pronounced quasi-nondiffracting propagation and self-acceleration, with an intensity decay rate reduced by a factor of ∼1.88 relative to the input vortex beam and a transverse acceleration ∼1.84 times that of the input Airy beam. Moreover, both the intensity and the spatial profile of the generated beam are flexibly manipulated by varying the Rb vapor temperature and the pump beam power. This work provides a versatile approach for generating and controlling structured light at what we believe are new wavelengths, opening opportunities for short-wavelength optical manipulation and optical information processing.

Authors

Publication Details

Journal
Optics Express
Published
2026-10-05
DOI
https://doi.org/10.1364/oe.614937
Primary Topic
Orbital Angular Momentum in Optics
Type
article
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article

Generation and manipulation of frequency-converted Airy vortex beam via atomic four-wave mixing

Sandan Wang, Jingyi Zhou, Xuewen Wang, Jinpeng Yuan et al.
Optics Express
Orbital Angular Momentum in Optics
article

Generation and manipulation of frequency-converted Airy vortex beam via atomic four-wave mixing

Sandan Wang, Jingyi Zhou, Xuewen Wang, Jinpeng Yuan, Lirong Wang, Suotang Jia, Yi Hu, Liantuan Xiao
article en

Abstract

Airy vortex beams, which integrate orbital angular momentum with diffraction-resistant and self-accelerating characteristics of Airy beams, offer unique capabilities for high-capacity optical communication and high-resolution imaging. Here, we experimentally demonstrate the generation and manipulation of frequency-converted Airy vortex beams through four-wave mixing in hot Rb vapor. A 780 nm vortex beam and a 776 nm two-dimensional Airy beam coherently participate in the four-wave mixing process, generating a 420 nm output beam that combines the orbital angular momentum of the vortex beam with the spatial structure of the Airy beam. The generated beam exhibits pronounced quasi-nondiffracting propagation and self-acceleration, with an intensity decay rate reduced by a factor of ∼1.88 relative to the input vortex beam and a transverse acceleration ∼1.84 times that of the input Airy beam. Moreover, both the intensity and the spatial profile of the generated beam are flexibly manipulated by varying the Rb vapor temperature and the pump beam power. This work provides a versatile approach for generating and controlling structured light at what we believe are new wavelengths, opening opportunities for short-wavelength optical manipulation and optical information processing.

Optics ExpressVol. 34(21)
Openalex Percentile: Top 16%
Orbital Angular Momentum in Optics
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