Enhanced Supercontinuum Generation in Integrated Waveguides Incorporated with Graphene Oxide Films

Author:

Zhang Yuning1,Wu Jiayang1ORCID,Yang Yunyi1,Qu Yang1,Jia Linnan1,Dirani Houssein El2,Kerdiles Sébastien3,Sciancalepore Corrado4,Demongodin Pierre5,Grillet Christian5,Monat Christelle5,Jia Baohua67,Moss David J.1ORCID

Affiliation:

1. Optical Sciences Centre Swinburne University of Technology Hawthorn Victoria 3122 Australia

2. STMicroelectronics Crolles Cedex 38926 France

3. CEA‐LETI Minatec Optics ans Photonics Divesion Grenoble 38054 France

4. Soitec SA Bernin 38190 France

5. Institut des nanotechnologies de Lyon UMR CNRS 5270, Ecole Centrale Lyon Ecully F‐69130 France

6. School of Science RMIT University Melbourne Victoria 3000 Australia

7. Australian Research Council (ARC) Industrial Transformation Training Centre in Surface Engineering for Advanced Materials (SEAM) RMIT University Melbourne Victoria 3000 Australia

Abstract

AbstractEnhanced supercontinuum generation (SCG) is experimentally demonstrated in integrated silicon nitride (Si3N4) waveguides incorporating highly nonlinear graphene oxide (GO) in the form of 2D films. On‐chip integration of the 2D GO films with precise control of their thickness is realized by using a transfer‐free and layer‐by‐layer coating method. The control of the film length and coating position is achieved via window opening in the upper silica cladding of the photonic integrated chips. Detailed SCG measurements are performed using the fabricated devices with different waveguide geometries and GO film thicknesses, and the results are compared with devices without GO. Significantly improved spectral broadening of ultrashort optical pulses with ultrahigh peak powers exceeding 1000 W is observed for the hybrid devices, achieving up to 2.4 times improvement in the spectral bandwidth relative to devices without GO. Theoretical analyses for the influence of GO film thickness, coating length, coating position, and waveguide geometry are also provided by fitting the experimental results with theory, showing that there is still significant room for further improvement. This work opens up a new avenue toward improving the SCG performance of photonic integrated devices by incorporating functional 2D materials.

Funder

Agence Nationale de la Recherche

Publisher

Wiley

Subject

Industrial and Manufacturing Engineering,Mechanics of Materials,General Materials Science

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