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Three-dimensional profile stitching based on the fiducial markers for microfluidic devices

机译:基于基准标记的微流控设备三维轮廓缝合

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摘要

Profile acquisition of microfluidic devices is a challenging task due to the competing requirements of both large field of view (FOV) and high-resolution. One strategy for obtaining such measurement is linking or stitching high-resolution profiles, possibly from multiple instruments, into a large FOV profile. As opposed to current stitching techniques relying on precise control and measurement of the translation of the sample stage, our approach presented in this paper takes advantage of the overlapping of fiducial markers, to align and stitch the separately measured profiles of a device. This method allows three-dimensional profiles transformed in six degrees of freedom, so that the pitch, roll and yaw among measurements are compensated, and stitching can be processed in both in-plane and out-of plane directions. Measurements of microfluidic channels recorded by an atomic force microscope and a white-light interferometer are stitched with accuracies evaluated to be 0.086 (mu)m and 0.094 (mu)m, respectively. Stitching experiments for large-scale profile gets an accuracy of 0.047 (mu)m. Special form of stitching for profiles acquired by different tools, i.e. key parts of a device profile measured by a small FOV high-resolution instrument are stitched into a large FOV low-resolution profile by another instrument, is also carried out with an accuracy of 0.224 (mu)m.
机译:由于大视野(FOV)和高分辨率的竞争需求,微流控设备的轮廓采集是一项具有挑战性的任务。获得这种测量的一种策略是将高分辨率轮廓(可能来自多个仪器)链接或缝合到大FOV轮廓中。与目前依靠精确控制和测量样品台平移的缝合技术不同,本文提出的方法利用基准标记的重叠优势来对齐和缝合分别测量的设备轮廓。这种方法可以将三维轮廓转换成六个自由度,从而可以补偿测量之间的俯仰,滚动和偏航,并且可以在平面内和平面外方向上处理拼接。用原子力显微镜和白光干涉仪记录的微流体通道的测量结果的准确度分别为0.086μm和0.094μm。用于大型轮廓的缝合实验的精度为0.047μm。通过不同工具获取的轮廓的特殊缝合形式,即由另一台FOV高分辨率仪器测量的设备轮廓的关键部分由另一台仪器缝制成大FOV低分辨率轮廓,其精度也为0.224微米

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