DocumentCode :
1296734
Title :
Pole-Perturbation Theory for Nonlinear Noise Analysis of All-Pole RF MEMS Tunable Filters
Author :
Sekar, Vikram ; Entesari, Kamran
Author_Institution :
Dept. of Electr. & Comput. Eng., Texas A&M Univ., College Station, TX, USA
Volume :
58
Issue :
9
fYear :
2010
Firstpage :
2475
Lastpage :
2489
Abstract :
This paper presents a theoretical approach to predict the effect of nonlinear noise mechanisms in all-pole RF microelectromechanical systems (MEMS) tunable filters. It is shown that both nonlinearity and noise can be expressed as perturbations of poles of the filter transfer function. Perturbations in the bandpass filter are mapped into its equivalent ladder network as perturbations in the prototype element values. Closed-form equations are derived to calculate pole-perturbations in Butterworth and Chebyshev filters using prototype perturbations. The proposed method is then used to calculate the effect of nonlinear noise phenomena due to Brownian motion in RF MEMS tunable filters for different input power levels. As a result, the filter phase noise is calculated as a function of input power, tuning state, fractional bandwidth, filter order, and frequency offset. The effect of filter nonidealities and their implications on phase noise are discussed. Finally, it is shown that signal-to-noise ratio degradation due to filter phase noise is most significant in MEMS tunable filters with low bandwidth, high order, and high quality factor.
Keywords :
band-pass filters; circuit noise; circuit tuning; ladder filters; micromechanical devices; nonlinear network analysis; perturbation theory; phase noise; poles and zeros; radiofrequency filters; transfer functions; Brownian motion; Butterworth filters; Chebyshev filters; all-pole RF MEMS tunable filters; all-pole RF microelectromechanical systems tunable filters; bandpass filter; closed-form equations; equivalent ladder network; filter nonidealities; filter order; filter phase noise; filter transfer function; fractional bandwidth; frequency offset; nonlinear noise analysis; nonlinear noise mechanisms; pole-perturbation theory; prototype element values; prototype perturbations; signal-to-noise ratio degradation; tuning state; Band pass filters; Bandwidth; Chebyshev approximation; Filtering theory; Micromechanical devices; Microswitches; Noise; Nonlinear equations; Phase noise; Prototypes; Radio frequency; Radiofrequency microelectromechanical systems; Resonant frequency; Transfer functions; Brownian motion; RF microelectromechanical systems (MEMS); nonlinearity; phase noise; pole-perturbation; signal-to-noise ratio (SNR);
fLanguage :
English
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9480
Type :
jour
DOI :
10.1109/TMTT.2010.2058595
Filename :
5549963
Link To Document :
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