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Precision Longitudinal Alignment of Matter-wave Near-field Interferometer

机译:物质波近场干涉仪的纵向精确对准

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Matter-wave near-field interferometric experiments require interference contrast as high as possible in order to extractinformation from the interference patterns. One of the tasks to accomplish this requirement is to align the distancesbetween gratings and detection. We present here a method for this precision alignment. An electron beam as a matterwavesource, a diffraction grating, and mask grating were used in this study. The simulations show that the longitudinalscanning of the mask grating with the detection can specify the exact location of the near-field or so-called Talbotdistance with the condition of using the gratings with small open fractions. Therefore, the various open fractions weredone in the calculation. Due to the lack of commercial gratings with small open fractions, a technique of two overlappinggratings can be applied for changing arbitrary grating shapes and open fractions. We conclude that smaller open fractionof the gratings gives better longitudinal alignment. The results show that the Talbot distance is located at the highestthroughput behind the gratings. The present study can provide a method for implementing matter-wave diffractionexperiments in the future.
机译:物质波近场干涉实验需要尽可能高的干涉对比才能提取 来自干扰模式的信息。达到此要求的任务之一是对齐距离 在光栅和检测之间。我们在这里提出一种用于这种精确对准的方法。电子束作为物质波 光源,衍射光栅和掩模光栅被用于这项研究中。仿真表明,纵向 通过检测扫描掩模光栅可以指定近场或所谓的Talbot的确切位置 距离,条件是使用开口率小的光栅。因此,各种开放分数是 在计算中完成。由于缺少具有小开口率的商用光栅,因此需要两个重叠的技术 光栅可以用于改变任意的光栅形状和开放分数。我们得出结论,较小的开放分数 光栅的长度可以提供更好的纵向对准。结果表明,Talbot距离位于最高 光栅后面的吞吐量。本研究可以提供一种实现物质波衍射的方法 将来进行实验。

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