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The joint co-frequency co-time full duplex (CCFD)- phased array technology offers high spectral efficiency, large communication capacity, low system latency, strong reliability, and low complexity. It holds broad application prospects in wireless communication, military communication, unmanned aerial vehicles, and satellite communication. Aiming at the self-interference cancellation (SIC) and delay requirements in CCFD-phased array systems, an all-optical SIC method with delay down-conversion is proposed in this paper. Through a Sagnac loop-based optical delay structure and polarization control, delay/amplitude matching and phase inversion are performed, and SIC is implemented in the optical domain. Simultaneously, the desired intermediate frequency (IF) signal is time-delayed using a dispersion medium (DM) and a tunable laser wavelength. Moreover, through appropriate DC bias control, the periodic power fading induced by DM can also be eliminated, and the output signal power can be regulated. Experimental and simulation results indicate that the single-frequency SIC depth exceeds 40 dB, while the broadband SIC depth exceeds 26 dB over sweep bandwidths of 500 MHz and 1 GHz. Additionally, the link gain remains relatively flat during 11 km optical fiber transmission. When the laser wavelength is adjusted from 1544 to 1556 nm, the delay of the IF signal can vary from -1120 to 1120 ps. Finally, the requirements for system gain optimization and image rejection down-conversion are discussed in detail, with preliminary results provided and potential application scenarios analyzed.
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http://dx.doi.org/10.1364/OE.561709 | DOI Listing |
The joint co-frequency co-time full duplex (CCFD)- phased array technology offers high spectral efficiency, large communication capacity, low system latency, strong reliability, and low complexity. It holds broad application prospects in wireless communication, military communication, unmanned aerial vehicles, and satellite communication. Aiming at the self-interference cancellation (SIC) and delay requirements in CCFD-phased array systems, an all-optical SIC method with delay down-conversion is proposed in this paper.
View Article and Find Full Text PDFSensors (Basel)
April 2025
National Key Laboratory of Wireless Communications, University of Electronic Science and Technology of China, Chengdu 611731, China.
In order to realize robust communication in complicated interference electromagnetic environments, an intelligent transmitter design is proposed in this paper, where an auxiliary wideband receiver senses the electromagnetic distribution information in a wide bandwidth range to decide the optimal working frequency. One of the key issues is suppressing the self-interference of high-power transmitter signals to the co-platform wideband sensing receiver. Due to the multipath effect of the self-interference channel, perfect time synchronization of self-interference signals is not achievable, which reduces the interference cancelation performance of the co-platform.
View Article and Find Full Text PDFSci Rep
March 2025
ENET Centre, VSB-Technical University of Ostrava, Ostrava, Czech Republic.
Heterogeneous communication modes in 5G demand integrated device connections, resource availability, and high capacity for meeting user demands. The radio resource allocation and usage for massive users results in interference between the device-to-device (D2D) uplink channels. This issue is addressed using a Non-orthogonal Convex Optimization Problem (NCOP) that identifies the chances of self-interference cancellations.
View Article and Find Full Text PDFIn-band full-duplex (IBFD) operation is essential for both sensing-centric and communication-centric integrated sensing and communications (ISAC) systems. Both types require the monostatic transceiver to overcome the technical challenge of self-interference (SI). To address this challenge, a photonics-assisted self-interference cancellation (SIC) scheme for an IBFD ISAC transceiver is proposed and experimentally demonstrated.
View Article and Find Full Text PDFMicromachines (Basel)
August 2024
School of Physics and Optoelectronic Engineering, Institute of Laser Engineering, Beijing University of Technology, Beijing 100124, China.
A novel photonic-assisted multifunctional radar system was proposed and experimentally investigated. This system can simultaneously achieve frequency-doubled linear frequency modulation (LFM) signal generation, de-chirp reception, self-interference cancellation, and frequency measurement in an integrated transmit-receive radar. First, a high-frequency and broadband LO signal was obtained with photonic frequency doubling, which improved the center frequency and bandwidth of the radar detection system.
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