Publication | Closed Access
Gbps Terahertz External Modulator Based on a Composite Metamaterial with a Double-Channel Heterostructure
238
Citations
38
References
2015
Year
Thz PhotonicsTerahertz TechnologyEngineeringMetamaterialsComposite MetamaterialTerahertz PhotonicsThz ModulatorElectromagnetic MetamaterialsTerahertz PhysicsTerahertz Material PropertiesNanoelectronicsComposite Metamaterial StructureNanophotonicsPhotonicsElectrical EngineeringTerahertz SpectroscopyPhysicsTerahertz ScienceDouble-channel HeterostructureTerahertz DevicesApplied PhysicsThz WavesTerahertz TechniqueOptoelectronicsTerahertz Applications
Terahertz research has expanded rapidly, driving demand for phase and amplitude modulation, yet existing active THz devices cannot meet system needs, and double‑channel heterostructures offer high‑mobility 2DEGs that could enable new active THz devices. The authors aim to develop an effective, ultrafast, all‑electronic grid‑controlled THz.
The past few decades have witnessed a substantial increase in terahertz (THz) research. Utilizing THz waves to transmit communication and imaging data has created a high demand for phase and amplitude modulation. However, current active THz devices, including modulators and switches, still cannot meet THz system demands. Double-channel heterostructures, an alternative semiconductor system, can support nanoscale two-dimensional electron gases (2DEGs) with high carrier concentration and mobility and provide a new way to develop active THz devices. In this Letter, we present a composite metamaterial structure that combines an equivalent collective dipolar array with a double-channel heterostructure to obtain an effective, ultrafast, and all-electronic grid-controlled THz modulator. Electrical control allows for resonant mode conversion between two different dipolar resonances in the active device, which significantly improves the modulation speed and depth. This THz modulator is the first to achieve a 1 GHz modulation speed and 85% modulation depth during real-time dynamic tests. Moreover, a 1.19 rad phase shift was realized. A wireless free-space-modulation THz communication system based on this external THz modulator was tested using 0.2 Gbps eye patterns. Therefore, this active composite metamaterial modulator provides a basis for the development of effective and ultrafast dynamic devices for THz wireless communication and imaging systems.
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