Title :
Energy-Recycling Full-Duplex Radios for Next-Generation Networks
Author :
Maso, Marco ; Chen-Feng Liu ; Chia-Han Lee ; Quek, Tony Q. S. ; Cardoso, Leonardo S.
Author_Institution :
Math. & Algorithmic Sci. Lab., Huawei France Res. Center, Boulogne-Billancourt, France
Abstract :
In this work, a novel energy-recycling single-antenna full-duplex (FD) radio is designed, in which a new three-port element including a power divider and an energy harvester is added between the circulator and the receiver (RX) chain. The presence of this new element brings advantages over the state of the art in terms of both spectral efficiency and energy consumption. In particular, it provides the means of performing both an arbitrary attenuation of the incoming signal, which in turn increases the effectiveness of the state-of-the-art self-interference cancellation strategies subsequently adopted in the RX chain, and the recycling of a non-negligible portion of the energy leaked through the nonideal circulator. The performance of this architecture is analyzed in a practically relevant four-node scenario in which two nodes operate in FD and two nodes in half-duplex (HD). Analytical approximations are derived for both the achievable rates of the transmissions performed by the FD and HD radios and the energy recycled by the FD radios. The accuracy of these derivations is confirmed by numerical simulations. Quantitatively, achievable rate gains up to 40% over the state-of-the-art alternatives, in the considered scenario, are highlighted. Furthermore, up to 50% of the leaked energy at the circulator, i.e., 5% of the energy of the transmitted signal, can be recycled.
Keywords :
energy harvesting; interference suppression; next generation networks; power dividers; radio receivers; FD radios; HD radios; analytical approximations; arbitrary attenuation; energy consumption; energy harvester; energy-recycling single-antenna full-duplex radio; four-node scenario; half-duplex; next-generation networks; nonideal circulator; power divider; self-interference cancellation strategies; spectral efficiency; three-port element; Circulators; Energy harvesting; Green communications; High definition video; Interference; Power dividers; Radio frequency; Silicon carbide; Full-duplex (FD) radios; Full-duplex radios; device-to-device (D2D) communications; energy harvesting; self-interference cancellation; wireless backhaul;
Journal_Title :
Selected Areas in Communications, IEEE Journal on
DOI :
10.1109/JSAC.2015.2482058