Photonic generation of frequency octupling microwave signal is proposed and demonstrated, which is based on a cascading polarization modulator and a dual-parallel Mach–Zehnder modulator. The method avoids using phase shifter and optical filter, which is suitable for generating a frequency octupling microwave signal with a wideband tuning range and fast tuning speed. In the experiment, a photonic generation frequency octupling microwave signal with 20 GHz is generated. The optical sideband suppression ratio, electrical sideband suppression ratio (ESSR), and phase noise of the photonic generation octupling microwave signal are measured. In addition, the tunability of the proposed scheme is investigated.
We propose a ring modulator based on few-layer graphene with large tunability and modulation efficiency. Compared with monolayer graphene, a few-layer graphene structure can enhance the tunability linearly. In the proposed structure, the shift of resonance wavelength can be enlarged to 20.3 nm, implying the proposed modulator can achieve the bandwidth of 100 GHz. In addition, a large extinction ratio of 15.5 dB and a good temperature tolerance of 45 K can be obtained in this modulator.
We propose an ultrasmall channel based on graphene–SiO2 metamaterial, which is composed of alternating layers of graphene and SiO2 periodically. By tuning the permittivity of the graphene through the applied voltage, the basic logic gate-controllable channel made by the graphene–SiO2 metamaterial is able to control the light transmission, which can be used to work as optical logic gate with ultrasmall footprint and large extinction ratio, including the AND, OR, XOR, and XOR logic gates.
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