arXiv · 2407.15597
Terahertz and gigahertz magneto-ratchets in graphene-based 2D metamaterials
Abstract
We report on the observation and study of the magneto-ratchet effect in a graphene-based two-dimensional metamaterial formed by a graphite gate that is placed below a graphene monolayer and patterned with an array of triangular antidots. We demonstrate that terahertz/gigahertz excitation of the metamaterial leads to sign-alternating magneto-oscillations with an amplitude that exceeds the ratchet current at zero magnetic field by orders of magnitude. The oscillations are shown to be related to the Shubnikov-de Haas effect. In addition to the giant ratchet current oscillations we detect resonant ratchet currents caused by the cyclotron and electron spin resonances. The results are well described by the developed theory considering the magneto-ratchet effect caused by the interplay of the near-field radiation and the nonuniform periodic electrostatic potential of the metamaterial controlled by the gate voltages.
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Marcel Hild, Erwin Mönch, Leonid E. Golub, Ivan A. Dmitriev, Ivan Yahniuk, Katharina Amann, Julia Amann, Jonathan Eroms, Jörg Wunderlich, Dieter Weiss, Christophe Consejo, Cedric Bray, Kenneth Maussang, Frederic Teppe, Joanna Gumenjuk-Sichevska, Kenji Watanabe, Takashi Taniguchi, Sergey D. Ganichev. 2024-07-22. Terahertz and gigahertz magneto-ratchets in graphene-based 2D metamaterials. https://doi.org/10.1103/physrevb.110.125303
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