Title :
A 0.2–3.6-GHz 10-dBm B1dB 29-dBm IIP3 Tunable Filter for Transmit Leakage Suppression in SAW-Less 3G/4G FDD Receivers
Author :
Cheng-kai Luo ; Gudem, Prasad S. ; Buckwalter, James F.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of California, San Diego, La Jolla, CA, USA
Abstract :
A tunable N-path filter with more than one decade tuning range is demonstrated to address transmit (TX) leakage in a surface-acoustic-wave-less diversity path receiver for frequency-division duplexing cellular systems. The proposed filter simultaneously creates a reject band and passband anywhere from 0.2 to 3.6 GHz to suppress TX leakage while minimizing insertion loss of the receive signal and is implemented in 45-nm CMOS silicon-on-insulator. Measurements show the 3-dB bandwidth of the passband is greater than 80 MHz with an independently tunable reject band, providing the ultimate rejection is from 33 to 41 dB while the passband insertion loss is between 2.6 dB and 4.3 dB over the tuning range. The proposed filter offers 29-dBm out-of-band (OOB) third-order input-intercept power (IIP3) and 22-dBm in-band (IB) IIP3 with a 10-dBm blocker 1-dB compression point (B1dB). To the authors´ knowledge, this is the highest B1dB, IB IIP3, and OOB IIP3 for a CMOS tunable filter.
Keywords :
3G mobile communication; 4G mobile communication; CMOS integrated circuits; UHF filters; field effect MMIC; frequency division multiplexing; microwave filters; microwave receivers; silicon-on-insulator; CMOS silicon-on-insulator; CMOS tunable filter; IIP3 tunable filter; SAW-less 3G-4G FDD receivers; Si; frequency 0.2 GHz to 3.6 GHz; frequency division duplexing cellular systems; loss 2.6 dB to 4.3 dB; out-of-band third-order input-intercept power; size 45 nm; surface-acoustic-wave-less diversity path receiver; transmit leakage suppression; tunable N-path filter; Band-pass filters; Impedance; Insertion loss; Linearity; Receivers; Resistance; Switches; $N$ -path; Blocker suppression; CMOS; compression point; filter; high linearity; long-term evolution (LTE); passive mixer; surface acoustic wave (SAW)-less; tunable;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2015.2460733