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AFM Cantilever Design for Multimode Q Control: Arbitrary Placement of Higher Order Modes

机译:用于多模Q控制的AFM悬臂设计:高阶模式的任意放置

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摘要

In the fast growing field of multifrequency atomic force microscopy (AFM), the benefits of using higher order modes have been extensively reported on. However, higher modes of AFM cantilevers are difficult to instrument and Q control is challenging owing to their high-frequency nature. At these high frequencies, the latencies in the computations and analog conversions of digital signal processing platforms become significant and limit the effective bandwidth of digital feedback controller implementations. To address this issue, this article presents a novel cantilever design for which the first five modes are placed within a 200-kHz bandwidth. The proposed cantilever is designed using a structural optimization routine. The close spacing and low mechanical bandwidth of the resulting cantilever allows for the implementation of Q controllers for all five modes using a standard field programmable gate array (FPGA) development board for bimodal AFM and imaging on higher order modes.
机译:在快速生长的多频原子力显微镜(AFM)领域中,广泛报道了使用更高阶模式的益处。然而,由于其高频率性质,难以施工的AFM悬臂器的更高模式难以仪器,并且Q控制是挑战。在这些高频下,数字信号处理平台的计算和模拟转换中的延迟变得显着并限制了数字反馈控制器实现的有效带宽。为了解决这个问题,本文提出了一种新颖的悬臂设计,前五种模式被放置在200 kHz的带宽范围内。所提出的悬臂采用结构优化常规设计。所得到的悬臂的近距离间距和低机械带宽允许使用用于双模AFM的标准场可编程门阵列(FPGA)开发板和高阶模式的成像来实现所有五种模式的Q控制器。

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