Randomized trial demonstrates independent control of topological charge in ultraviolet optical vortex beams, suggesting advancements in photonic applications.
The development of ultraviolet (UV) optical vortex beams is critical for advancing nanoscale photonic applications; however, it has long been hindered by fundamental limitations in high-performance UV optical components. In this study, we demonstrate a compact, two-stage nonlinear frequency upconversion architecture for generating UV optical vortex beams. The scheme integrates a synchronized dual-quasi-phase-matching process, where second-harmonic generation and sum-frequency generation processes occur concurrently, followed by a cascaded UV upconversion stage. This design enables independent control of the topological charge (TC) of the UV vortex beam and discrete, broadband wavelength selection across the deep- to near-UV spectral range. Experimentally, 269 nm femtosecond UV optical vortex pulses with a TC controllably tuned from ℓ = 1 to ℓ = 4 were generated. Moreover, by selecting distinct cascaded upconversion pathways enabled by the spatiotemporally synchronized multi-vortex output from the preceding SHG–SFG stage, discrete wavelength tuning from 241 to 407 nm was achieved. Collectively, this compact, two-stage nonlinear upconversion platform provides a robust and versatile route to structured light generation at short UV wavelengths.
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Jiang et al. (2026) studied this question.
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