Graphene’s nonlinear-optical physics revealed through exponentially growing self-phase modulation

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作者
Nathalie Vermeulen
David Castelló-Lurbe
Mulham Khoder
Iwona Pasternak
Aleksandra Krajewska
Tymoteusz Ciuk
Wlodek Strupinski
JinLuo Cheng
Hugo Thienpont
Jürgen Van Erps
机构
[1] Vrije Universiteit Brussel,Brussels Photonics, Dept. of Applied Physics and Photonics
[2] Universitat de València,Institut Universitari de Ciències dels Materials
[3] Institute of Electronic Materials Technology,Faculty of Physics
[4] Warsaw University of Technology,The Guo China
[5] Chinese Academy of Sciences,US Photonics Laboratory, Changchun Institute of Optics, Fine Mechanics and Physics
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Graphene is considered a record-performance nonlinear-optical material on the basis of numerous experiments. The observed strong nonlinear response ascribed to the refractive part of graphene’s electronic third-order susceptibility χ(3) cannot, however, be explained using the relatively modest χ(3) value theoretically predicted for the 2D material. Here we solve this long-standing paradox and demonstrate that, rather than χ(3)-based refraction, a complex phenomenon which we call saturable photoexcited-carrier refraction is at the heart of nonlinear-optical interactions in graphene such as self-phase modulation. Saturable photoexcited-carrier refraction is found to enable self-phase modulation of picosecond optical pulses with exponential-like bandwidth growth along graphene-covered waveguides. Our theory allows explanation of these extraordinary experimental results both qualitatively and quantitatively. It also supports the graphene nonlinearities measured in previous self-phase modulation and self-(de)focusing (Z-scan) experiments. This work signifies a paradigm shift in the understanding of 2D-material nonlinearities and finally enables their full exploitation in next-generation nonlinear-optical devices.
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