Advancing on-chip Kerr optical parametric oscillation towards coherent applications covering the green gap

Fuente: arXiv
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Main Authors: Sun, Yi, Stone, Jordan, Lu, Xiyuan, Zhou, Feng, Shi, Zhimin, Srinivasan, Kartik
Format: Preprint
Published: 2024
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author Sun, Yi
Stone, Jordan
Lu, Xiyuan
Zhou, Feng
Shi, Zhimin
Srinivasan, Kartik
author_facet Sun, Yi
Stone, Jordan
Lu, Xiyuan
Zhou, Feng
Shi, Zhimin
Srinivasan, Kartik
contents Optical parametric oscillation (OPO) in Kerr microresonators can efficiently transfer near-infrared laser light into the visible spectrum. To date, however, chromatic dispersion has mostly limited output wavelengths to >560 nm, and robust access to the whole green light spectrum has not been demonstrated. In fact, wavelengths between 532 nm and 633 nm, commonly referred to as the "green gap", are especially challenging to produce with conventional laser gain. Hence, there is motivation to extend the Kerr OPO wavelength range and develop reliable device designs. Here, we experimentally show how to robustly access the entire green gap with Kerr OPO in silicon nitride microrings pumped near 780 nm. Our microring geometries are optimized for green-gap emission; in particular, we introduce a dispersion engineering technique, based on partially undercutting the microring, which not only expands wavelength access but also proves robust to variations in resonator dimensions, in particular, the microring width. Using just two devices, we generate >100 wavelengths evenly distributed throughout the green gap, as predicted by our dispersion simulations. Moreover, we establish the usefulness of Kerr OPO to coherent applications by demonstrating continuous frequency tuning (>50 GHz) and narrow optical linewidths (<1 MHz). Our work represents an important step in the quest to bring nonlinear nanophotonics and its advantages to the visible spectrum.
format Preprint
id arxiv_https___arxiv_org_abs_2401_12823
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Advancing on-chip Kerr optical parametric oscillation towards coherent applications covering the green gap
Sun, Yi
Stone, Jordan
Lu, Xiyuan
Zhou, Feng
Shi, Zhimin
Srinivasan, Kartik
Optics
Optical parametric oscillation (OPO) in Kerr microresonators can efficiently transfer near-infrared laser light into the visible spectrum. To date, however, chromatic dispersion has mostly limited output wavelengths to >560 nm, and robust access to the whole green light spectrum has not been demonstrated. In fact, wavelengths between 532 nm and 633 nm, commonly referred to as the "green gap", are especially challenging to produce with conventional laser gain. Hence, there is motivation to extend the Kerr OPO wavelength range and develop reliable device designs. Here, we experimentally show how to robustly access the entire green gap with Kerr OPO in silicon nitride microrings pumped near 780 nm. Our microring geometries are optimized for green-gap emission; in particular, we introduce a dispersion engineering technique, based on partially undercutting the microring, which not only expands wavelength access but also proves robust to variations in resonator dimensions, in particular, the microring width. Using just two devices, we generate >100 wavelengths evenly distributed throughout the green gap, as predicted by our dispersion simulations. Moreover, we establish the usefulness of Kerr OPO to coherent applications by demonstrating continuous frequency tuning (>50 GHz) and narrow optical linewidths (<1 MHz). Our work represents an important step in the quest to bring nonlinear nanophotonics and its advantages to the visible spectrum.
title Advancing on-chip Kerr optical parametric oscillation towards coherent applications covering the green gap
topic Optics
url https://arxiv.org/abs/2401.12823