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Ground-state properties of one-dimensional matter and the Zel'dovich effect in Rydberg atoms.

机译:Rydberg原子的一维物质的基态性质和Zel'dovich效应。

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摘要

The following dissertation consists of three parts. The first two concern ground-state properties of one-dimensional matter, while the third describes an experimental realization of the Zel'dovich effect in Rydberg atoms.; Motivated by emerging experimental possibilities to confine atoms and molecules in quasi-one-dimensional geometries, in Chapters 1 and 2 we analyze ground-state properties of strictly one-dimensional molecular matter comprised of identical particles of mass m interacting by a Morse potential between nearest neighbors. We find that due to zero-point motion, the system first undergoes a discontinuous evaporation transition into a diatomic gas followed by a continuous dissociation transition into a monoatomic gas. In particular we find that spin-polarized isotopes of hydrogen and 3He are monoatomic gases, 4He is a diatomic gas, while molecular hydrogen and heavier substances are Luttinger liquids. We also investigate the effect of finite pressure on the properties of the liquid and monoatomic gas phases. In particular we estimate a pressure at which molecular hydrogen undergoes an inverse Peierls transition into a metallic state which is a one-dimensional analog of the transition predicted by Wigner and Huntington in 1935. In Chapter 2, we show that dissociation of the Luttinger liquid is a process initiated at the system edge. The latter becomes unstable against quantum fluctuations at a value of De Boer's number which is smaller than that of the bulk instability which parallels the classical phenomenon of surface melting.; In 1959 Ya. B. Zel'dovich predicted that the bound-state spectrum of the non-relativistic Coulomb problem distorted at small distances by a short-range potential undergoes a peculiar reconstruction whenever this potential alone supports a low-energy scattering resonance. However documented experimental evidence of this effect has been lacking. In Chapter 3 we demonstrate that along the Periodic Table of elements the Zel'dovich effect manifests itself as a systematic periodic variation of the Rydberg spectra with a period proportional to the cubic root of the atomic number. This dependence, which is supported by analysis of experimental and numerical data, has its origin in the binding properties of the ionic core of the atom.
机译:以下论文由三部分组成。前两个涉及一维物质的基态性质,而第三个描述了在里德堡原子中Zel'dovich效应的实验实现。在新兴的实验可能性的推动下,将原子和分子限制在准一维几何结构中,在第1章和第2章中,我们分析了严格的一维分子物质的基态性质,该物质由质量相同的粒子m相互作用,在最近的摩尔斯势能之间相互作用邻居。我们发现由于零点运动,系统首先经历了不连续的蒸发转变为双原子气体,然后连续解离转变为单原子气体。特别地,我们发现氢和3He的自旋极化同位素是单原子气体,4He是双原子气体,而分子氢和重质物质是Luttinger液体。我们还研究了有限压力对液相和单原子气相性能的影响。特别是,我们估计了分子氢经历Peierls逆转变为金属态的压力,该压力是Wigner和Huntington在1935年预测的转变的一维模拟。在第2章中,我们证明Luttinger液体的解离是在系统边缘启动的过程。后者在De Boer数的值小于与表面熔化经典现象相似的整体不稳定性的值之间,对量子涨落变得不稳定。 1959年入雅。 B. Zel'dovich预测,每当短距离电势支持低能量散射共振时,由短程电势在小距离处扭曲的非相对论库仑问题的束缚态谱都会经历特殊的重构。但是,缺乏有关这种作用的实验证明。在第3章中,我们证明了沿着元素周期表的Zel'dovich效应表现为Rydberg光谱的系统周期性变化,其周期与原子序数的立方根成比例。通过对实验和数值数据的分析来支持这种依赖性,这种依赖性起源于原子的离子核的结合特性。

著录项

  • 作者

    Timmins, Michael Anthony.;

  • 作者单位

    University of Virginia.;

  • 授予单位 University of Virginia.;
  • 学科 Physics Condensed Matter.; Physics Atomic.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 110 p.
  • 总页数 110
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子物理学、原子物理学;
  • 关键词

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