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https://elib.bsu.by/handle/123456789/261957
Title: | Experimental Demonstration of Ultrafast THz Modulation in a Graphene-Based Thin Film Absorber through Negative Photoinduced Conductivity |
Authors: | Tasolamprou, A.C. Koulouklidis, A.D. Daskalaki, C. Mavidis, C.P. Kenanakis, G. Deligeorgis, G. Viskadourakis, Z. Kuzhir, P. Tzortzakis, S. Kafesaki, M. Economou, E.N. Soukoulis, C.M. |
Keywords: | ЭБ БГУ::ЕСТЕСТВЕННЫЕ И ТОЧНЫЕ НАУКИ::Физика |
Issue Date: | 2019 |
Publisher: | American Chemical Society |
Citation: | ACS Photonics 2019;6(3):720-727. |
Abstract: | We present an experimental demonstration and interpretation of an ultrafast optically tunable, graphene-based thin film absorption modulator for operation in the THz regime. The graphene-based component consists of a uniform CVD-grown graphene sheet stacked on an SU-8 dielectric substrate that is grounded by a metallic ground plate. The structure shows enhanced absorption originating from constructive interference of the impinging and reflected waves at the absorbing graphene sheet. The modulation of this absorption, which is demonstrated via a THz time-domain spectroscopy setup, is achieved by applying an optical pump signal, which modifies the conductivity of the graphene sheet. We report an ultrafast (on the order of few ps) absorption modulation on the order of 40% upon photoexcitation. Our results provide evidence that the optical pump excitation results in the degradation of the graphene THz conductivity, which is connected with the generation of hot carriers, the increase of the electronic temperature, and the dominant increase of the scattering rate over the carrier concentration as found in highly doped samples. Copyright |
URI: | https://elib.bsu.by/handle/123456789/261957 |
DOI: | 10.1021/acsphotonics.8b01595 |
Scopus: | 85062489892 |
Sponsorship: | This work was supported by the European Union’s Horizon 2020 Project 696656 Graphene Flagship, the European Research Council under ERC Advanced Grant no. 320081 (project PHOTOMETA), and the European Union’s Horizon 2020 Future Emerging Technologies call (FETOPEN-RIA) under grant agreement no. 736876 (project VISORSURF), the Hellenic Foundation for Research and Innovation (HFRI), and the General Secretariat for Research and Technology (GSRT), under the HFRI PhD Fellowship grant (GA. no. 4894). This work was also partially supported by the National Priorities Research Program grant no. NPRP9-329-1-067 from the Qatar National Research Fund (member of The Qatar Foundation), the H2020 Laserlab-Europe (EC-GA 654148), and H2020 MIR-BOSE (EC-GA 737017) projects. P.K. is thankful to Tomsk State University Competitive Programme and H2020-MSCA-RISE-2014 Project ID 644076 CoExAN. |
Appears in Collections: | Статьи НИУ «Институт ядерных проблем» |
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