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Compensator design for improved counterbalancing in high speed atomic force microscopy

机译:补偿器设计可改善高速原子力显微镜中的平衡

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摘要

High speed atomic force microscopy can provide the possibility of many new scientific observations and applications ranging from nano-manufacturing to the study of biological processes. However, the limited imaging speed has been an imperative drawback of the atomic force microscopes. One of the main reasons behind this limitation is the excitation of the AFM dynamics at high scan speeds, severely undermining the reliability of the acquired images. In this research, we propose a piezo based, feedforward controlled, counter actuation mechanism to compensate for the excited out-of-plane scanner dynamics. For this purpose, the AFM controller output is properly filtered via a linear compensator and then applied to a counter actuating piezo. An effective algorithm for estimating the compensator parameters is developed. The information required for compensator design is extracted from the cantilever deflection signal, hence eliminating the need for any additional sensors. The proposed approach is implemented and experimentally evaluated on the dynamic response of a custom made AFM. It is further assessed by comparing the imaging performance of the AFM with and without the application of the proposed technique and in comparison with the conventional counterbalancing methodology. The experimental results substantiate the effectiveness of the method in significantly improving the imaging performance of AFM at high scan speeds.
机译:高速原子力显微镜可以提供许多新的科学观察和应用的可能性,从纳米制造到生物过程的研究。然而,有限的成像速度已经成为原子力显微镜的必然缺点。该限制背后的主要原因之一是在高扫描速度下激发AFM动态,严重破坏了所获取图像的可靠性。在这项研究中,我们提出了一种基于压电的,前馈控制的反向致动机制,以补偿激发的平面外扫描仪动力学。为此,通过线性补偿器对AFM控制器的输出进行适当的滤波,然后将其施加到反向致动压电上。开发了一种有效的补偿器参数估计算法。补偿器设计所需的信息是从悬臂偏转信号中提取的,因此无需任何其他传感器。所提出的方法在定制AFM的动态响应上进行了实施和实验评估。通过比较使用和不使用建议的技术以及与传统的平衡方法相比,AFM的成像性能进行进一步评估。实验结果证实了该方法在高扫描速度下显着改善AFM成像性能的有效性。

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