Near ultraviolet photonic integrated lasers based on silicon nitride

Author:

Siddharth Anat1ORCID,Wunderer Thomas2ORCID,Lihachev Grigory1,Voloshin Andrey S.1,Haller Camille3,Wang Rui Ning1,Teepe Mark2,Yang Zhihong2,Liu Junqiu1,Riemensberger Johann1ORCID,Grandjean Nicolas3ORCID,Johnson Noble2,Kippenberg Tobias J.1

Affiliation:

1. Laboratory of Photonics and Quantum Measurements, Swiss Federal Institute of Technology Lausanne (EPFL), CH-1015 Lausanne, Switzerland

2. Palo Alto Research Center, Palo Alto, California 94304, USA

3. Laboratory of Advanced Semiconductors for Photonics and Electronics, Swiss Federal Institute of Technology Lausanne (EPFL), CH-1015 Lausanne, Switzerland

Abstract

Low phase noise lasers based on the combination of III–V semiconductors and silicon photonics are well established in the near-infrared spectral regime. Recent advances in the development of low-loss silicon nitride-based photonic integrated resonators have allowed them to outperform bulk external diode and fiber lasers in both phase noise and frequency agility in the 1550 nm-telecommunication window. Here, we demonstrate for the first time a hybrid integrated laser composed of a gallium nitride-based laser diode and a silicon nitride photonic chip-based microresonator operating at record low wavelengths as low as 410 nm in the near-ultraviolet wavelength region suitable for addressing atomic transitions of atoms and ions used in atomic clocks, quantum computing, or for underwater LiDAR. By self-injection locking of the Fabry–Pérot diode laser to a high-Q (0.4 × 106) photonic integrated microresonator, we reduce the optical phase noise at 461 nm by a factor greater than 100×, limited by the device quality factor and back-reflection.

Funder

Army Research Laboratory

Army Research Office

Air Force Office of Scientific Research

European Space Agency

Publisher

AIP Publishing

Subject

Computer Networks and Communications,Atomic and Molecular Physics, and Optics

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