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Atom chip setup for cold Rydberg atom experiments.

机译:用于冷Rydberg原子实验的Atom芯片设置。

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摘要

The design, construction and characterization of an atom chip apparatus for cold Rydberg atom experiments with 87Rb is presented. The apparatus is designed to investigate interactions between Rydberg atoms and the nearby chip surface, as well as the dynamics of Rydberg atoms in a double well. The proposed interrogation scheme is Rydberg electromagnetically induced transparency (Rydberg EIT). Magnetic trapping potentials used to load the chip with atoms are calculated. The atom number and temperature during various phases of the loading sequence are measured using absorption imaging. The room-temperature 4-level ladder-type Rydberg EIT system, in which the 3-level Rydberg EIT system is coupled via microwaves to a second Rydberg state, is investigated experimentally. EIT transmission spectra for different microwave powers and different polarizations of optical fields and microwaves are presented. It is shown that, to explain the observed polarization effects in the probe transmission lineshape, all magnetic sublevels, including the hyperfine structure of both Rydberg levels, have to be taken into account. The corresponding 52-level theory is discussed. Calculations of long-range multipolar Rydberg-atom Rydberg-atom interaction potentials are also presented and discussed.
机译:介绍了一种用于87Rb冷Rydberg原子实验的原子芯片装置的设计,构造和表征。该设备旨在研究Rydberg原子与附近芯片表面之间的相互作用以及双井中Rydberg原子的动力学。提出的询问方案是Rydberg电磁感应的透明性(Rydberg EIT)。计算了用于将原子加载到芯片上的磁陷阱势。使用吸收成像测量加载序列各个阶段的原子序数和温度。实验研究了室温4级阶梯型Rydberg EIT系统,其中3级Rydberg EIT系统通过微波耦合到第二Rydberg状态。给出了不同微波功率以及光场和微波的不同极化的EIT传输光谱。结果表明,为了解释在探针传输线形状中观察到的极化效应,必须考虑所有磁性子能级,包括两个里德堡能级的超精细结构。讨论了相应的52级理论。还介绍并讨论了远程多极Rydberg-原子Rydberg-原子相互作用势的计算。

著录项

  • 作者

    Schwettmann, Arne.;

  • 作者单位

    The University of Oklahoma.;

  • 授予单位 The University of Oklahoma.;
  • 学科 Physics Low Temperature.;Physics Atomic.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 335 p.
  • 总页数 335
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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