Title :
Single-Cycle-PLL Detection for Real-Time FM-AFM Applications
Author :
Schlecker, Benedikt ; Dukic, Maja ; Erickson, Blake ; Ortmanns, Maurits ; Fantner, Georg ; Anders, Jens
Author_Institution :
Inst. of Microelectron., Univ. of Ulm, Ulm, Germany
Abstract :
In this paper we present a novel architecture for phase-locked loop (PLL) based high-speed demodulation of frequency-modulated (FM) atomic force microscopy (AFM) signals. In our approach, we use single-sideband (SSB) frequency upconversion to translate the AFM signal from the position sensitive detector to a fixed intermediate frequency (IF) of 10 MHz. In this way, we fully benefit from the excellent noise performance of PLL-based FM demodulators still avoiding the intrinsic bandwidth limitation of such systems. In addition, the upconversion to a fixed IF renders the PLL demodulator independent of the cantilever´s resonance frequency, allowing the system to work with a large range of cantilever frequencies. To investigate if the additional noise introduced by the SSB upconverter degrades the system noise figure we present a model of the AM-to-FM noise conversion in PLLs incorporating a phase-frequency detector. Using this model, we can predict an upper corner frequency for the demodulation bandwidth above which the converted noise from the single-sideband upconverter becomes the dominant noise source and therefore begins to deteriorate the overall system performance. The approach is validated by both electrical and AFM measurements obtained with a PCB-based prototype implementing the proposed demodulator architecture.
Keywords :
atomic force microscopy; biomedical measurement; cantilevers; frequency convertors; frequency modulation; medical signal processing; phase locked loops; signal denoising; AFM measurement; AM-to-FM noise conversion; PCB-based prototype; PLL-based FM demodulators; SSB upconverter; additional noise; cantilever resonance frequency; demodulation bandwidth; demodulator architecture; dominant noise source; electrical measurement; fixed IF; fixed intermediate frequency; frequency 10 MHz; frequency-modulated atomic force microscopy signals; intrinsic bandwidth limitation; noise performance; overall system performance; phase-frequency detector; phase-locked loop based high-speed demodulation; position sensitive detector; real-time FM-AFM application; single-cycle-PLL detection; single-sideband frequency upconversion; single-sideband upconverter; system noise figure; upper corner frequency; Amplitude modulation; Bandwidth; Demodulation; Frequency modulation; Noise; Phase locked loops; Resonant frequency; Atomic force microscopy; frequency-modulated atomic force microscopy (FM-AFM); noise analysis; phase-locked loop (PLL); single-cycle detection;
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
DOI :
10.1109/TBCAS.2014.2307696