Ultra-broadband mid-infrared generation in dispersion-engineered thin-film lithium niobate

Thin-film lithium niobate (TFLN) is an emerging platform for compact, low-power nonlinear-optical devices, and has been used extensively for near-infrared frequency conversion. Recent work has extended these devices to mid-infrared wavelengths, where broadly tunable sources may be used for chemical...

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Veröffentlicht in:Optics express 2022-08, Vol.30 (18), p.32752-32760
Hauptverfasser: Mishra, Jatadhari, Jankowski, Marc, Hwang, Alexander Y, Stokowski, Hubert S, McKenna, Timothy P, Langrock, Carsten, Ng, Edwin, Heydari, David, Mabuchi, Hideo, Safavi-Naeini, Amir H, Fejer, M M
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Sprache:eng
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Zusammenfassung:Thin-film lithium niobate (TFLN) is an emerging platform for compact, low-power nonlinear-optical devices, and has been used extensively for near-infrared frequency conversion. Recent work has extended these devices to mid-infrared wavelengths, where broadly tunable sources may be used for chemical sensing. To this end, we demonstrate efficient and broadband difference frequency generation between a fixed 1-µm pump and a tunable telecom source in uniformly-poled TFLN-on-sapphire by harnessing the dispersion-engineering available in tightly-confining waveguides. We show a simultaneous 1-2 order-of-magnitude improvement in conversion efficiency and ∼5-fold enhancement of operating bandwidth for mid-infrared generation when compared to equal-length conventional lithium niobate waveguides. We also examine the effects of mid-infrared loss from surface-adsorbed water on the performance of these devices.
ISSN:1094-4087
1094-4087
DOI:10.1364/OE.467580