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Atom optics, core electrons, and the van der Waals potential .

机译:原子光学,核心电子和范德华势。

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This dissertation describes new measurements of the van der Waals (vdW) potential energy for atoms near a surface. The measurements presented here were accomplished by studying diffraction a beam of atoms transmitted through a nanograting. I will describe how we improved precision by a factor of 10 over previous diffraction measurements by studying how different types of atoms interact with the same surface. As a result of this new precision, we were able to show for the first time the contribution of atomic core electrons to the atom-surface potential, and experimentally test different atomic structure calculation methods.;In addition, this dissertation will describe how changing the width of the grating bars to achieve a particular "magic" grating bar width or rotating a grating to a particular "magic" angle allows us to determine both the atom-surface potential strength and the geometry of the grating. This represents an improvement over several recent studies where uncertainties in the nanograting geometry limited precision in the measurements of the vdW potential.;For a complementary measurement, also discussed in this dissertation, we collaborated with the Vigue group in Toulouse, France. In this collaboration we used an atom interferometer to measure the phase shift due to transmission through a nanograting. By combining diffraction data from Tucson with interferometry data from Toulouse we improved the precision of interferometry measurements of the atom-surface potential of a single atomic species by almost a factor of 10 over previous interferometric measurements of the vdW potential. These interferometry measurements also serve to measure the shape of the vdW potential and set a limit on non-Newtonian gravitational interactions at 1-2 nm length scales.;Finally, this dissertation will discuss how nanogratings with optimized geometry can improve atom interferometers, for example, with blazed gratings. We discuss next generation atom-surface potential measurements and examine new ways of analyzing diffraction data.
机译:本文描述了表面附近原子的范德华(vdW)势能的新测量。这里介绍的测量是通过研究通过纳米光栅传输的原子束的衍射来完成的。我将通过研究不同类型的原子如何与同一表面相互作用,来描述我们如何将精度比以前的衍射测量提高10倍。由于这种新的精确度,我们能够首次证明原子核电子对原子表面电势的贡献,并通过实验测试了不同的原子结构计算方法。此外,本论文还将描述如何改变原子能级。达到特定的“魔术”光栅条宽度或将光栅旋转到特定的“魔术”角可以使我们既确定原子表面势强度又确定光栅的几何形状。这代表了对几项最近研究的改进,在这些研究中,纳米光栅几何形状的不确定性限制了vdW电位的测量精度。对于互补测量,也在本文中讨论,我们与法国图卢兹的Vigue小组合作。在这项合作中,我们使用了原子干涉仪来测量由于纳米光栅的透射而引起的相移。通过将来自图森的衍射数据与来自图卢兹的干涉测量数据相结合,我们将单个原子物种的原子表面电势的干涉测量精度提高了约10倍,超过了之前对vdW势的干涉测量。这些干涉测量法还可以测量vdW势的形状,并在1-2 nm长度尺度上限制非牛顿引力相互作用。最后,本文将讨论具有优化几何形状的纳米光栅如何改善原子干涉仪,例如,带有炽热的光栅。我们讨论下一代原子表面电势测量,并研究分析衍射数据的新方法。

著录项

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Physics Atomic.;Physics Elementary Particles and High Energy.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 137 p.
  • 总页数 137
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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