4.7 Article

Quantum Noise Secured Terahertz Communications

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/JSTQE.2022.3218848

Keywords

Optical mixing; Optical noise; Ciphers; High-speed optical techniques; Optical transmitters; Adaptive optics; Wireless communication; Communication system security; communication system signaling; optical communication; optical signal processing; quantum theory; terahertz radiation

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The study presents a quantum noise secured terahertz wireless communication approach with photonic terahertz signal generation schemes. By masking the signal and introducing quantum noise ciphers, eavesdroppers are unable to detect the signal, ensuring high-security terahertz communication.
The terahertz communications display an important role in high-speed wireless communications, the security threat from the eavesdroppers in the terahertz communications has been gaining attention recently. The true randomness in the physical layer can ensure one-time-pad encryption for secured terahertz communications, however, physical layer security schemes like the quantum key distribution methods suffer from device imperfections that limit the desirable signal rate and link distance. Herein, we present the quantum noise secured terahertz wireless communications with photonic terahertz signal generation schemes. With the high-order diffusion algorithms, the signal is masked by the quantum noise ciphers to the eavesdroppers and cannot be detected because the inevitable randomness by quantum noise measurement will cause physical measurement errors. In the experiment, we demonstrate 16 Gbits(-1) quantum noise secured terahertz wireless communications with the conventional optical communication realms and devices, operating at 300 GHz terahertz frequency. This quantum noise secured terahertz communication approach is a significant step toward high-security wireless communications.

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