Title :
Tunable High-Q N-Path Band-Pass Filters: Modeling and Verification
Author :
Ghaffari, Amir ; Klumperink, Eric A M ; Soer, Michiel C M ; Nauta, Bram
Author_Institution :
IC Design Group, Univ. of Twente, Enschede, Netherlands
fDate :
5/1/2011 12:00:00 AM
Abstract :
A differential single-port switched-RC N-path filter with band-pass characteristic is proposed. The switching frequency defines the center frequency, while the RC-time and duty cycle of the clock define the bandwidth. This allows for high-Q highly tunable filters which can for instance be useful for cognitive radio. Using a linear periodically time-variant (LPTV) model, exact expressions for the filter transfer function are derived. The behavior of the circuit including non-idealities such as maximum rejection, spectral aliasing, noise and effects due to mismatch in the paths is modeled and verified via measurements. A simple RLC equivalent circuit is provided, modeling bandwidth, quality factor and insertion loss of the filter. A 4-path architecture is realized in 65 nm CMOS. An off-chip transformer acts as a balun, improves filter-Q and realizes impedance matching. The differential architecture reduces clock-leakage and suppresses selectivity around even harmonics of the clock. The filter has a constant -3 dB bandwidth of 35 MHz and can be tuned from 100 MHz up to 1 GHz. Over the whole band, IIP3 is better than 14 dBm, P1dB=2 dBm and the noise figure is 3-5 dB, while the power dissipation increases from 2 mW to 16 mW (only clocking power).
Keywords :
CMOS integrated circuits; RLC circuits; UHF filters; band-pass filters; equivalent circuits; switched filters; transfer functions; CMOS process; LPTV model; RLC equivalent circuit; bandwidth 35 MHz; cognitive radio; differential single-port switched-RC N-path filter; frequency 100 MHz to 1 GHz; impedance matching; linear periodical time-variant model; noise figure 3 dB to 5 dB; off-chip transformer; power 2 mW to 16 mW; size 65 nm; transfer function; tunable high-Q N-path band-pass filters; Band pass filters; Capacitors; Clocks; Equations; Harmonic analysis; Mathematical model; Switches; Band-pass filter; CMOS; LPTV; N-path filter; cognitive radio; commutated capacitors; frequency translated filter; high linearity; high-Q; inductorless filter; linear periodically time variant circuit; software-defined radio; tunable filter;
Journal_Title :
Solid-State Circuits, IEEE Journal of
DOI :
10.1109/JSSC.2011.2117010