Title :
Multi-beam 4 GHz microwave apertures using current-mode DFT approximation on 65 nm CMOS
Author :
Ariyarathna, Viduneth ; Kulasekera, Sunera ; Madanayake, Arjuna ; Kye-Shin Lee ; Suarez, Dora ; Cintra, Renato J. ; Bayer, Fabio M. ; Belostotski, Leonid
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Akron, Akron, OH, USA
Abstract :
A current-mode CMOS design is proposed for realizing receive mode multi-beams in the analog domain using a novel DFT approximation. High-bandwidth CMOS RF transistors are employed in low-voltage current mirrors to achieve bandwidths exceeding 4 GHz with good beam fidelity. Current mirrors realize the coefficients of the considered DFT approximation, which take simple values in {0,±1,±2} only. This allows high bandwidths realizations using simple circuitry without needing phase-shifters or delays. The proposed design is used as a method to efficiently achieve spatial discrete Fourier transform operation across a ULA to obtain multiple simultaneous RF beams. An example using 1.2 V current-mode approximate DFT on 65 nm CMOS, with BSIM4 models from the RF kit, show potential operation up to 4 GHz with eight independent aperture beams.
Keywords :
CMOS integrated circuits; current mirrors; discrete Fourier transforms; microwave transistors; BSIM4 model; RF beam; RF kit; ULA; analog domain; beam fidelity; complementary metal oxide semiconductor; current-mode CMOS design; current-mode DFT approximation; delay circuit; frequency 4 GHz; high-bandwidth CMOS RF transistor; independent aperture beam; low-voltage current mirror; microwave aperture; phase-shifter; receive mode multibeam; size 65 nm; spatial discrete Fourier transform; uniformly-spaced linear array; voltage 1.2 V; Approximation algorithms; Approximation methods; Butler matrices; CMOS integrated circuits; Discrete Fourier transforms; Linear antenna arrays; Mirrors; Analog; aperture; arrays; beamforming; multi-beam;
Conference_Titel :
Microwave Symposium (IMS), 2015 IEEE MTT-S International
Conference_Location :
Phoenix, AZ
DOI :
10.1109/MWSYM.2015.7167112