Title :
An asymmetric dual-channel reconfigurable receiver for GNSS in 180nm CMOS
Author :
Nan Qi ; Baoyong Chi ; Yang Xu ; Zhou Chen ; Jun Xie ; Zheng Song ; Zhihua Wang
Author_Institution :
Inst. of Microelectron., Tsinghua Univ., Beijing, China
Abstract :
A fully integrated dual-channel reconfigurable receiver supporting all the GNSS (GPS, Compass, GLONASS, Galileo) signals in 180nm CMOS is presented. The two channels share the frequency synthesizer and RF front-end circuits, but employ separate IF strips to support simultaneous dual-constellation reception. In order to save the power of digital baseband, one of the two IF strips can be configured to a dual-conversion mode, which lowers the highest signal frequency and thus the sampling rate. The two asymmetric channels are designed with different bandwidths, covering from 2.2MHz to 20MHz for both civil and high precision applications. Besides, I/Q mismatch calibration is introduced into each down-conversion to improve the image rejection ratio (IRR). The highly integrated receiver also integrates on-chip LDOs, crystal oscillator, AFC, AGC and DCOC modules. Thanks to the flexible frequency plan and scalable IF circuits, the typical dual-channel power consumption can be reduced to 45mW. The receiver finally achieves 2.5dB noise figure, 40dB minimum IRR, 55dB dynamic range with 1dB gain steps and -57dBm input referred in-band 1dB compression point. The result of collaboration with digital baseband shows that the chip achieves positioning with >40dB carrier to noise ratio (CNR).
Keywords :
CMOS integrated circuits; frequency synthesizers; radio receivers; satellite navigation; AFC; AGC; CMOS; DCOC; GNSS; IF strips; RF front end circuits; asymmetric dual channel reconfigurable receiver; bandwidth 2.2 MHz to 20 MHz; crystal oscillator; digital baseband; dual channel power consumption; dual constellation reception; dual conversion mode; flexible frequency plan; frequency synthesizer; highly integrated receiver; image rejection ratio; noise figure 2.5 dB; on chip LDO; scalable IF circuits; size 180 nm; CMOS integrated circuits; Calibration; Compass; Global Navigation Satellite Systems; Global Positioning System; Radio frequency; Receivers;
Conference_Titel :
Custom Integrated Circuits Conference (CICC), 2013 IEEE
Conference_Location :
San Jose, CA
DOI :
10.1109/CICC.2013.6658497