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Tunable Optical Vortex from a Nanogroove-Structured Optofluidic Microlaser

Zhen Qiao, Chaoyang Gong, Yikai Liao, Chenlu Wang, Kok Ken Chan, Song Zhu, Munho Kim, Yu‐Cheng Chen

2021Nano Letters24 citationsDOI

Abstract

Optical vortices with tunable properties in multiple dimensions are highly desirable in modern photonics, particularly for broadly tunable wavelengths and topological charges at the micrometer scale. Compared to solid-state approaches, here we demonstrate tunable optical vortices through the fusion of optofluidics and vortex beams in which the handedness, topological charges, and lasing wavelengths could be fully adjusted and dynamically controlled. Nanogroove structures inscribed in Fabry-Pérot optofluidic microcavities were proposed to generate optical vortices by converting Hermite-Gaussian laser modes. Topological charges could be controlled by tuning the lengths of the nanogroove structures. Vortex laser beams spanning a wide spectral band (430-630 nm) were achieved by alternating different liquid gain materials. Finally, dynamic switching of vortex laser wavelengths in real-time was realized through an optofluidic vortex microlaser device. The findings provide a robust yet flexible approach for generating on-chip vortex sources with multiple dimensions, high tunability, and reconfigurability.

Topics & Concepts

Lasing thresholdVortexOptofluidicsReconfigurabilityOptical vortexPhotonicsLaserOpticsWavelengthMaterials scienceOptoelectronicsPhysicsNanotechnologyMicrofluidicsComputer scienceThermodynamicsTelecommunicationsOrbital Angular Momentum in OpticsMicrofluidic and Bio-sensing TechnologiesPlasmonic and Surface Plasmon Research
Tunable Optical Vortex from a Nanogroove-Structured Optofluidic Microlaser | Litcius