Title :
An Ultra Low Energy FSK Receiver With In-Band Interference Robustness Exploiting a Three-Phase Chirped LO
Author :
Dutta, Ritaban ; van der Zee, R. ; Kokkeler, A.B.J. ; Bentum, Mark J. ; Klumperink, Eric A. M. ; Nauta, Bram
Author_Institution :
Centre of Telematics & Inf. Technol., Univ. of Twente, Enschede, Netherlands
Abstract :
An ultra-low-energy Binary Frequency Shift Keying (BFSK) receiver is proposed. It features improved in-band interference tolerance by chirping the transmission frequency. To reduce the receiver power consumption, a novel three-phase passive mixer along with a three stage digitally controlled ring oscillator is proposed, while still allowing quadrature detection. A mixer-first direct conversion receiver architecture moves the required gain to lowest frequency and lowest bandwidth to reduce power consumption. A low power flip-flop based BFSK demodulator is proposed that reduces the baseband power further. The receiver is designed and fabricated in a 65 nm complementary metal-oxide-semiconductor process. It consumes 219 μW from 1.2 V power supply, while having a sensitivity of -70 dBm for a bit error rate of 0.1% at 2.4 GHz. Except the off-chip 64 MHz clock generation, the total receiver requires 27 pJ/bit. Using a chirped clock spreading of 360 MHz and chirp repetition rate of 1 MHz, it can tolerate up to -8 dB signal to interference ratio for all interferer frequencies. This is 13.5 dB better than previously reported in literature and 12 dB better than ideal noncoherent BFSK receiver interference robustness.
Keywords :
CMOS integrated circuits; chirp modulation; error statistics; frequency shift keying; interference suppression; mixers (circuits); oscillators; passive networks; radio receivers; wireless sensor networks; BFSK receiver; baseband power reduction; bit error rate; chirp repetition rate; chirped clock; clock generation; complementary metal oxide semiconductor process; digitally controlled ring oscillator; frequency 1 MHz; frequency 2.4 GHz; frequency 360 MHz; frequency 64 MHz; in-band interference tolerance; low power flip-flop based BFSK demodulator; power 219 muW; quadrature detection; receiver power consumption reduction; signal to interference ratio; size 65 nm; three phase chirped LO; three-phase passive mixer; transmission frequency chirping; voltage 1.2 V; wireless sensor networks; Chirp; Frequency shift keying; Interference; Mixers; Receivers; Robustness; Synchronization; Binary frequency shift keying (BFSK) demodulator; I-Q receiver; bit error rate (BER); chirp communication; direct conversion receiver; direct modulation; interference robust; passive mixer; ring oscillator; single tone interference (STI); three-phase; ultra low energy (ULE); ultra low power; wireless sensor network (WSN);
Journal_Title :
Emerging and Selected Topics in Circuits and Systems, IEEE Journal on
DOI :
10.1109/JETCAS.2014.2337154