Optical vortices 30 years on: OAM manipulation from topological charge to multiple singularities
Оптические вихри 30 лет спустя: управление орбитальным угловым моментом от топологического заряда до множественных сингулярностей
2019-10-02
SCID: 54.1/s4y3625p
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optical vorticesorbital angular momentumphase singularitytopological chargetunable vortex beams
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Abstract (AI)
Thirty years ago, Coullet et al. proposed that a special optical field exists in laser cavities bearing some analogy with the superfluid vortex. Since then, optical vortices have been widely studied, inspired by the hydrodynamics sharing similar mathematics. Akin to a fluid vortex with a central flow singularity, an optical vortex beam has a phase singularity with a certain topological charge, giving rise to a hollow intensity distribution. Such a beam with helical phase fronts and orbital angular momentum reveals a subtle connection between macroscopic physical optics and microscopic quantum optics. These amazing properties provide a new understanding of a wide range of optical and physical phenomena, including twisting photons, spin-orbital interactions, Bose-Einstein condensates, etc., while the associated technologies for manipulating optical vortices have become increasingly tunable and flexible. Hitherto, owing to these salient properties and optical manipulation technologies, tunable vortex beams have engendered tremendous advanced applications such as optical tweezers, high-order quantum entanglement, and nonlinear optics. This article reviews the recent progress in tunable vortex technologies along with their advanced applications.
Key Findings
1
Optical vortex research connects macroscopic physical optics with microscopic quantum optics through phenomena including twisted photons and spin–orbital interactions.
2
Optical vortices are phase-singular beams with defined topological charge, hollow intensity profiles, helical phase fronts, and orbital angular momentum.
3
The review surveys recent progress in tunable vortex technologies and their applications, extending beyond single-charge vortices toward multiple singularities.
4
Tunable optical manipulation technologies have enabled increasingly flexible control of vortex beams and their singularity structures.
5
Vortex-beam technologies support advanced applications including optical tweezers, high-order quantum entanglement, and nonlinear optics.
Research Object
Optical vortex beams (tunable vortex beams with phase singularities and orbital angular momentum)
Research Subject
manipulation of orbital angular momentum, topological charge, and multiple singularities, together with applications of tunable vortex beams
Publication Details
Publication Date
2019-10-02
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