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Design of an FPGA-Based Controller for Fast Scanning Probe Microscopy

机译:基于 FPGA 的快速扫描探针显微镜控制器的设计

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摘要

Atomic-scale imaging using scanning probe microscopy is a pivotal method for investigating the morphology and physico-chemical properties of nanostructured surfaces. Time resolution represents a significant limitation of this technique, as typical image acquisition times are on the order of several seconds or even a few minutes, while dynamic processes—such as surface restructuring or particle sintering, to be observed upon external stimuli such as changes in gas atmosphere or electrochemical potential—often occur within timescales shorter than a second. In this article, we present a fully redesigned field programmable gate array (FPGA)-based instrument that can be integrated into most commercially available standard scanning probe microscopes. This instrument not only significantly accelerates the acquisition of atomic-scale images by orders of magnitude but also enables the tracking of moving features such as adatoms, vacancies, or clusters across the surface (“atom tracking”) due to the parallel execution of sophisticated control and acquisition algorithms and the fast exchange of data with an external processor. Each of these measurement modes requires a complex series of operations within the FPGA that are explained in detail.
机译:使用扫描探针显微镜进行原子级成像是研究纳米结构表面形态和物理化学性质的关键方法。时间分辨率是该技术的一个重大局限性,因为典型的图像采集时间约为几秒钟甚至几分钟,而动态过程(如表面重组或颗粒烧结)在外部刺激(如气体气氛或电化学势的变化)下观察)通常发生在短于一秒的时间范围内。在本文中,我们提出了一种完全重新设计的基于现场可编程门阵列 (FPGA) 的仪器,它可以集成到大多数市售的标准扫描探针显微镜中。该仪器不仅显着加快了原子级图像的采集速度,而且由于并行执行复杂的控制和采集算法以及与外部处理器的快速数据交换,还可以跟踪整个表面的移动特征,例如外置原子、空位或簇(“原子跟踪”)。这些 measurement modes 中的每一种都需要在 FPGA 中进行一系列复杂的操作,这些操作将得到详细说明。

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