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用于实时调频原子力显微镜应用的单周期锁相环检测。

Single-cycle-PLL detection for real-time FM-AFM applications.

作者信息

Schlecker Benedikt, Dukic Maja, Erickson Blake, Ortmanns Maurits, Fantner Georg, Anders Jens

出版信息

IEEE Trans Biomed Circuits Syst. 2014 Apr;8(2):206-15. doi: 10.1109/TBCAS.2014.2307696. Epub 2014 Apr 17.

DOI:10.1109/TBCAS.2014.2307696
PMID:24760947
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.

摘要

在本文中,我们提出了一种基于锁相环(PLL)的新型架构,用于调频(FM)原子力显微镜(AFM)信号的高速解调。在我们的方法中,我们使用单边带(SSB)频率上变频将来自位置敏感探测器的AFM信号转换到10 MHz的固定中频(IF)。通过这种方式,我们充分利用了基于PLL的FM解调器出色的噪声性能,同时仍避免了此类系统固有的带宽限制。此外,上变频到固定中频使PLL解调器与悬臂梁的共振频率无关,从而允许系统在大范围的悬臂梁频率下工作。为了研究SSB上变频器引入的额外噪声是否会降低系统噪声系数,我们提出了一个包含鉴相鉴频器的PLL中调幅到调频噪声转换的模型。使用该模型,我们可以预测解调带宽的上拐角频率,高于该频率时,来自单边带上变频器的转换噪声将成为主要噪声源,从而开始恶化整体系统性能。通过使用基于印刷电路板(PCB)的原型进行电气测量和AFM测量,对该方法进行了验证,该原型实现了所提出的解调器架构。

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