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Phase-Locked loops lock-in range in Frequency Modulated-Atomic Force Microscope nonlinear control system

机译:调频原子力显微镜非线性控制系统中的锁相环锁定范围

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摘要

Since the mid 1980s the Atomic Force Microscope is one the most powerful tools to perform surface investigation, and since 1995 Non-Contact AFM achieved true atomic resolution. The Frequency-Modulated Atomic Force Microscope (FM-AFM) operates in the dynamic mode, which means that the control system of the FM-AFM must force the micro-cantilever to oscillate with constant amplitude and frequency. However, tip-sample interaction forces cause modulations in the microcantilever motion. A Phase-Locked loop (PLL) is used to demodulate the tip-sample interaction forces from the microcantilever motion. The demodulated signal is used as the feedback signal to the control system, and to generate both topographic and dissipation images. As a consequence, a proper design of the PLL is vital to the FM-AFM performance. In this work, using bifurcation analysis, the lock-in range of the PLL is determined as a function of the frequency shift (Ω) of the microcantilever and of the other design parameters, providing a technique to properly design the PLL in the FM-AFM system.
机译:自1980年代中期以来,原子力显微镜是进行表面研究的最强大工具之一,自1995年以来,非接触式原子力显微镜实现了真正的原子分辨率。调频原子力显微镜(FM-AFM)在动态模式下运行,这意味着FM-AFM的控制系统必须迫使微悬臂以恒定的振幅和频率振荡。但是,针尖样品相互作用力会引起微悬臂梁运动的调制。锁相环(PLL)用于解调来自微悬臂梁运动的尖端样品相互作用力。解调后的信号用作控制系统的反馈信号,并生成地形图和耗散图。因此,正确设计PLL对FM-AFM性能至关重要。在这项工作中,使用分叉分析,根据微悬臂梁的频移(Ω)和其他设计参数确定PLL的锁定范围,从而提供了一种在FM- AFM系统。

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