Supercontinuum Generation in Dispersion Engineered Highly Doped Silica Glass Waveguides

Author:

Li Guangkuo1,Li Yuhua2,Ye Feng3,Li Qian3,Wang Shao Hao4,Wetzel Benjamin5,Davidson Roy6,Little Brent E.6,Chu Sai Tak1ORCID

Affiliation:

1. Department of Physics City University of Hong Kong 83 Tat Chee Avenue Kowloon Hong Kong China SAR

2. Key Laboratory of Optical Field Manipulation of Zhejiang Province Department of Physics Zhejiang Sci‐Tech University Hangzhou 310018 China

3. School of Electronic and Computer Engineering Peking University Nanshan District Shenzhen 518055 China

4. FZU‐Jinjiang Joint Institute of Microelectronics Jinjiang Science and Education Park Fuzhou University Jinjiang 362200 China

5. XLIM Research Institute University of Limoges, CNRS UMR 7252 123 avenue Albert Thomas Limoges Cedex 87060 France

6. QXP Technology Inc. 15 Shanglinyuan 1st Rd, High‐tech Zone Xi'an 710119 China

Abstract

AbstractThe effect of a lower index oxide layer inclusion within a highly doped silica glass slot waveguide is investigated for optimized supercontinuum generation at telecom wavelengths. By controlling the thickness of the oxide slot, it is demonstrated that one can engineer the waveguide dispersion profile in order to obtain supercontinua with vastly different spectral broadening dynamics and bandwidths. Using this approach, a waveguide with a low and flat dispersion profile of less than 43 across a wavelength range spanning over 1000 nm is designed and fabricated. It is shown that, when pumped at the telecom C‐band, a supercontinuum that spans over 1.5 octaves can be generated from 817 to 2183 nm. The numerical simulations, whose parameters are derived from the measured waveguide dimension and material indices, exhibit good agreement with experimental measurements, where one can observe both a qualitative and quantitative match in the supercontinuum overall spectrum and specific features (e.g., soliton and dispersive wave locations). This study represents an important step forward in the control and manipulation of dispersive and nonlinear dynamics in highly doped silica glass waveguides, paving the way toward advanced on‐chip broadband light manipulation.

Funder

National Natural Science Foundation of China

Shenzhen Fundamental Research Program

H2020 European Research Council

Publisher

Wiley

Subject

Condensed Matter Physics,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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