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Development of a XYZ scanner for home-made atomic force microscope based on FPAA control

机译:基于FPAA控制的原子力显微镜XYZ扫描仪的研制

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摘要

Atomic force microscopy (AFM) is one of the useful tools in the fields of nanoscale measurement and manipulation. High speed scanning is one of the crucial requirements for live cell imaging and soft matter characterization. The scanning speed is limited by the bandwidth of the AFM's detection and actuation components. Generally, the bandwidth of a traditional scanner is too low to conduct the live cell imaging. This paper presents a simple and integrated compact home-made AFM for high speed imaging. To improve the bandwidth of the scanner, a parallel kinematics mechanism driven by piezoelectric actuators (PZTs) is proposed for the fast positioning in the X, Y and Z directions. The mechanical design optimization, modeling and analysis, and experimental testing have been conducted to validate the performance of the proposed scanner. A number of experimental results showed that the developed scanner has the capability for broad bandwidth with low coupling errors in the actuation directions. A hybrid control strategy including feedforward and feedback loops has been designed to significantly improve the dynamic tracking performance of the scanner and a field programmable analog array (FPAA) system is utilized to implement the control algorithm for excellent and stable tracking capability. Further, a number of high speed measurements have been conducted to verify the performance of the developed AFM. (C) 2019 Elsevier Ltd. All rights reserved.
机译:原子力显微镜(AFM)是纳米级测量和操纵领域中的有用工具之一。高速扫描是活细胞成像和软物质表征的关键要求之一。扫描速度受AFM检测和执行组件带宽的限制。通常,传统扫描仪的带宽太低,无法进行活细胞成像。本文介绍了一种用于高速成像的简单且集成的紧凑型自制AFM。为了提高扫描仪的带宽,提出了一种由压电致动器(PZT)驱动的并联运动机构,用于在X,Y和Z方向上快速定位。机械设计优化,建模和分析,以及实验测试已进行以验证所提出的扫描仪的性能。许多实验结果表明,开发的扫描仪具有宽带宽的能力,并且在驱动方向上的耦合误差很低。设计了一种包括前馈和反馈回路的混合控制策略,以显着提高扫描仪的动态跟踪性能,并使用现场可编程模拟阵列(FPAA)系统来实现控制算法,以实现出色且稳定的跟踪能力。此外,已经进行了许多高速测量以验证所开发的AFM的性能。 (C)2019 Elsevier Ltd.保留所有权利。

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