Multi-channel OOK Communication by Using Frequency-multiplexed Switchable Metasurface
Programmable metasurfaces have recently attracted considerable interest for their versatile applications in areas such as beam steering, holography, and wireless communications, utilizing either phase or amplitude modulation. Despite this, programmable amplitude coding modulation has seen limited ex...
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Zusammenfassung: | Programmable metasurfaces have recently attracted considerable interest for
their versatile applications in areas such as beam steering, holography, and
wireless communications, utilizing either phase or amplitude modulation.
Despite this, programmable amplitude coding modulation has seen limited
exploration, primarily due to the difficulties involved in achieving real-time
dynamic amplitude control. Here, we propose a reprogrammable amplitude-coding
metasurface utilizing the on-off Keying (OOK) method combined with frequency
modulation. To the best of our knowledge, this is the first time we will
address both the design of the metasurface and the theoretical investigation of
OOK simultaneously, considering all parameters present in the design, channel,
and on-off ratio. The proposed metasurface comprises two layers of graphene
with separate biasing voltages. By controlling the chemical potential of each
layer, we can modulate the amplitude in two states at two frequencies through a
field-programmable gate array (FPGA). In addition, we employ an information
encryption method using the substitution cipher method and transmit it at two
amplitude levels at distinct frequencies of f1 = 0.98 THz and f2 = 1.46 THz to
safeguard transmission information against eavesdropping. Simulation and
numerical results convincingly demonstrate that the proposed reprogrammable
metasurface facilitates secure communication in multi-channel data encryption,
terahertz (THz) data storage, information processing, and THz communication. |
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DOI: | 10.48550/arxiv.2410.17613 |