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Nonlinear Dynamic Models of Piezoelectric Nano-Stages

机译:压电纳米级的非线性动力学模型

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High resolution imaging in scanning probe microscopes is conducted by raster ing a sharp probe over a sample surface. The rastering is done using piezoelectric elements, converting applied voltage into mechanical motion. For example, imaging of a rectangular field of view is done by applying triangular waveforms with different frequencies to X and Y piezoelectric stage, respectively. A disadvantage of piezoelectric stages is their non-linear response to applied voltage. In addition to that, they show creep, i.e. moving even though the applied voltage is constant. This results in distortions of the acquired image. Furthermore, it can result in not precisely imaging the requested area. A common solution is to add position sensors to the piezoelectric stages and measure actual movements. By using a feedback it would be almost guaranteed that the piezoelectric stage moves as requested. The disadvantage of this approach is that it reduces the bandwidth and increases the noise. The aim of this paper is to study advanced piezoelectric stage models to better control the actual stage movement in an open-loop scan.
机译:扫描探针显微镜中的高分辨率成像是通过将尖锐的探针光栅化在样品表面上来进行的。光栅是使用压电元件完成的,将施加的电压转换为机械运动。例如,通过分别向X和Y压电平台施加不同频率的三角波形来完成矩形视场的成像。压电级的一个缺点是它们对施加电压的非线性响应。除此之外,即使施加的电压是恒定的,它们也表现出蠕变,即运动。这导致所获取图像的失真。此外,这可能导致不精确地成像所请求的区域。常见的解决方案是在压电平台上添加位置传感器并测量实际运动。通过使用反馈,几乎可以保证压电平台按要求移动。这种方法的缺点是它减小了带宽并增加了噪声。本文的目的是研究先进的压电平台模型,以更好地控制开环扫描中实际平台的运动。

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