A new type of the graphene-based three-port circulator for the terahertz (THz) region is suggested and analyzed theoretically. The cross section of the component presents a three-layer structure consisting of… Click to show full abstract
A new type of the graphene-based three-port circulator for the terahertz (THz) region is suggested and analyzed theoretically. The cross section of the component presents a three-layer structure consisting of the layers of graphene, silica, and silicon. The in-plane figure of the circulator consists of a circular graphene resonator and three waveguides symmetrically connected to it. The resonator is magnetized normally to its plane by a dc magnetic field. The working principle of the device is based on the dipole resonance of the magnetized graphene resonator. The numerical simulations are fulfilled by a full-wave computational program. For the analysis of the circulator, the analytical temporal coupled mode theory and circuit theory are also used. Numerical calculations demonstrate the isolation greater than −15 dB and the insertion loss better then −3 dB within the bandwidth of about 7.4% and the central frequency of 5.38 THz. At this frequency, the minimum of the insertion losses is −2.65 dB, and the maximum of isolation is −40 dB. The biasing dc magnetic field is 0.45 T, and the Fermi energy is
               
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