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Circular motion control of an optically trapped microprobe for nano-position sensing

机译:用于纳米位置传感的光学捕获微探针的圆周运动控制

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摘要

As a position sensing probe for Nano-CMM which measures three-dimensional shapes of microparts, we propose a novel probing technique using circular motion of an optically trapped microsphere. In this report, a fundamental principle is described for sensing a coordinate on a work surface using a circular motion probe. The circular motion of the trapped sphere near a work surface becomes an ellipse compressed perpendicularly to the surface due to the change of viscous drag of the sphere. The elliptical orbit of the trapped sphere depends on a distance from the surface and a normal vector direction of the surface. By processing the elliptical orbit, the circular motion probe can detect a position and a plane normal vector of the work surface simultaneously. In order to verify feasibility of this method, fundamental experiments are carried out. The circular motion probe is approached to a vertical silicon cleavage surface. The behavior of the trapped sphere near the surface agrees well with the theory. Based on the elliptical orbit of the trapped sphere near the surface, a position and a plane normal vector of the surface are estimated. It is verified that the circular motion probe can detect a position of a work surface with resolution of better than 50nm and detect a plane normal vector of the surface.
机译:作为用于测量微零件的三维形状的Nano-CMM的位置传感探针,我们提出了一种利用光学捕获的微球的圆周运动的新颖探测技术。在此报告中,描述了一种基本原理,用于使用圆周运动探针感测工作表面上的坐标。由于球体的粘性阻力的变化,捕获球体在工作表面附近的圆周运动变成垂直于该表面压缩的椭圆。被捕获球体的椭圆轨道取决于与表面的距离和表面的法线向量方向。通过加工椭圆轨道,圆周运动探测器可以同时检测工作表面的位置和平面法向矢量。为了验证该方法的可行性,进行了基础实验。圆周运动探针接近垂直的硅分裂表面。靠近表面的俘获球体的行为与理论非常吻合。基于表面附近的捕获球体的椭圆轨道,估计表面的位置和平面法向矢量。验证了圆周运动探针可以检测分辨率高于50nm的工作表面的位置并检测表面的平面法向矢量。

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