Reconfigurable nonlinear losses of nanomaterial covered waveguides
Author:
Davletkhanov Ayvaz1ORCID, Mkrtchyan Aram1, Bunkov Alexey1, Chermoshentsev Dmitry12ORCID, Shashkov Mikhail3, Ilatovskii Daniil1, Krasnikov Dmitry1, Nasibulin Albert1, Gladush Yuriy1
Affiliation:
1. Skolkovo Institute of Science and Technology , Moscow 121205 , Russia 2. Russian Quantum Center , Skolkovo , Moscow 121205 , Russia 3. Boreskov Institute of Catalysis SB RAS , Novosibirsk 630090 , Russia
Abstract
Abstract
Optical waveguides covered with thin films, which transmittance can be controlled by external action, are widely used in various applications from optical modulators to saturable absorbers. It is natural to suggest that the losses through such a waveguide will be proportional to the absorption coefficient of the covering material. In this letter, we demonstrate that under certain conditions, this simple assumption fails. Instead, we observe that the reduction of the material loss of the film can lead to an increase in the propagation losses through the waveguide. For this, we use a side polished fiber covered with a single-walled carbon nanotube thin film whose absorption can be attenuated either by a short pulse illumination (due to absorption saturation) or with electrochemical gating. For the films thicker than 50 nm, we observe saturable absorption to turn into optical limiting with nonmonotonic dependence on the incident power. With a numerical simulation, we identify that this nontrivial behavior comes from mode reshaping due to changes in the absorption coefficient of the covering film. We demonstrate the applicability of the observed effect by fabricating the device which nonlinear optical response can be controllably switched between saturable absorbing and optical limiting. Finally, we utilize an analytical approach to predict the required parameters and corresponding nontrivial shapes of the nonlinear absorbance curves. These results provide new perspectives for engineering complex reconfigurable nonlinear optical responses and transmittance dependences of nanomaterial covered waveguides.
Funder
The Russian Science Foundation
Publisher
Walter de Gruyter GmbH
Subject
Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology
Reference65 articles.
1. M. Romagnoli, V. Sorianello, M. Midrio, et al.., “Graphene-based integrated photonics for next-generation datacom and telecom,” Nat. Rev. Mater., vol. 3, no. 10, pp. 392–414, 2018. https://doi.org/10.1038/s41578-018-0040-9. 2. N. Youngblood, Y. Anugrah, R. Ma, S. J. Koester, and M. Li, “Multifunctional graphene optical modulator and photodetector integrated on silicon waveguides,” Nano Lett., vol. 14, no. 5, pp. 2741–2746, 2014. https://doi.org/10.1021/nl500712u. 3. F. Bonaccorso, Z. Sun, T. Hasan, and A. C. Ferrari, “Graphene photonics and optoelectronics,” Nat. Photonics, vol. 4, no. 9, pp. 611–622, 2010. https://doi.org/10.1038/nphoton.2010.186. 4. Q. Bao and K. P. Loh, “Graphene photonics, plasmonics, and broadband optoelectronic devices,” ACS Nano, vol. 6, no. 5, pp. 3677–3694, 2012. https://doi.org/10.1021/nn300989g. 5. H. Jeong, S. Y. Choi, E. I. Jeong, S. J. Cha, F. Rotermund, and D.-I. Yeom, “Ultrafast mode-locked fiber laser using a waveguide-type saturable absorber based on single-walled carbon nanotubes,” Appl. Phys. Express, vol. 6, no. 5, p. 052705, 2013. https://doi.org/10.7567/apex.6.052705.
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