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Ultraviolet astronomical spectrograph calibration with laser frequency combs from nanophotonic lithium niobate waveguides

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arxiv 2306.13609 v2 pith:KZQVYOBY submitted 2023-06-23 physics.optics astro-ph.IM

classification physics.opticsastro-ph.IM
keywords astronomicalultravioletcalibrationlaserspectralchip-integratedcombcombs
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Astronomical precision spectroscopy underpins searches for life beyond Earth, direct observation of the expanding Universe and constraining the potential variability of physical constants across cosmological scales. Laser frequency combs can provide the critically required accurate and precise calibration to the astronomical spectrographs. For cosmological studies, extending the calibration with such astrocombs to the ultraviolet spectral range is highly desirable, however, strong material dispersion and large spectral separation from the established infrared laser oscillators have made this exceedingly challenging. Here, we demonstrate for the first time astronomical spectrograph calibrations with an astrocomb in the ultraviolet spectral range below 400 nm. This is accomplished via chip-integrated highly nonlinear photonics in periodically-poled, nano-fabricated lithium niobate waveguides in conjunction with a robust infrared electro-optic comb generator, as well as a chip-integrated microresonator comb. These results demonstrate a viable route towards astronomical precision spectroscopy in the ultraviolet and may contribute to unlocking the full potential of next generation ground- and future space-based astronomical instruments.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Fabrication-tolerant frequency conversion in thin film lithium niobate waveguide with layer-poled modal phase matching

    physics.optics 2025-05 conditional novelty 5.0 of 10

    Layer-poled modal phase matching is demonstrated as a fabrication-tolerant alternative to periodic poling for second harmonic and cascaded telecom-band frequency conversion in thin-film lithium niobate.

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