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High quality chalcogenide-silica hybrid wedge resonator
Author(s) -
Gumin Kang,
Molly R. Krogstad,
Michael Grayson,
DaeGon Kim,
Hansuek Lee,
Juliet T. Gopinath,
Wounjhang Park
Publication year - 2017
Publication title -
optics express
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.394
H-Index - 271
ISSN - 1094-4087
DOI - 10.1364/oe.25.015581
Subject(s) - chalcogenide , materials science , resonator , cladding (metalworking) , optoelectronics , optics , chalcogenide glass , microfabrication , wedge (geometry) , fabrication , composite material , medicine , physics , alternative medicine , pathology
Chalcogenide glasses, with high nonlinearity and low loss, have captured research interest as an integrated device platform for near- and mid-infrared nonlinear optical devices. Compared to silicon-based microfabrication technologies, chalcogenide fabrication processes are less mature and a major challenge is obtaining high quality devices. In this paper, we report a hybrid resonator design leveraging a high quality silica resonator to achieve high Q factors with chalcogenide. The device is composed of a thin chalcogenide layer deposited on a silica wedge resonator. The hybrid resonators exhibit loaded Q factors up to 1.5 x 10 5 in the near-infrared region. We also measured the effective thermo-optic coefficient of the device to be 5.5x10 -5 /K, which agreed well with the bulk value. Thermal drift of the device can be significantly reduced by introducing a titanium dioxide cladding layer with a negative thermo-optic coefficient.

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