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Measuring the Electron Electric Dipole Moment with Trapped Molecular Ions.

机译:用被困分子离子测量电子偶极矩。

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摘要

An electron electric dipole moment (eEDM) directly violates time-reversal symmetry, a fact which has far reaching implications for physics beyond the Standard Model. An experiment using trapped molecular ions offers high sensitivity because of the large effective electric fields and long coherence times that are possible. We demonstrate precision spectroscopy on many trapped HfF+ ions in a radiofrequency quadrupole trap with rotating electric and magnetic fields. The spectroscopy performed is a Ramsey type experiment between spin states of the metastable 3Delta 1 electronic state and has a coherence time exceeding 1 second. We have collected and analyzed over 200 hours of Ramsey spectroscopy data taken under a variety of experimental conditions. We identify several systematic errors that could potentially affect an eEDM measurement and estimate the size of these interloping effects. By collecting data under pairs of conditions where the eEDM has opposing signs (e.g. performing Ramsey spectroscopy on the two Lambda-doublets) we are able to take frequency differences that can suppress some of these systematic effects. Although our data set includes runs where we have intentionally varied experimental parameters to study systematic effects, we achieve a 1sigma statistical sensitivity of 2.76 x 10-28 e˙cm and place a 1sigma upper bound on the size of systematic effects of 2.82 x 10-28 e˙cm. Finally we present a preliminary upper bound on the eEDM of |de| < 4.6 x 10-28 e˙cm with 90% confidence.
机译:电子偶极矩(eEDM)直接违反了时间反转对称性,这一事实对物理学超出了标准模型的影响。使用捕获的分子离子的实验具有很高的灵敏度,因为可能存在较大的有效电场和较长的相干时间。我们展示了在旋转的电场和磁场作用下的射频四极阱中许多被捕获的HfF +离子的精密光谱。所执行的光谱是在亚稳态3Delta 1电子态的自旋态之间的Ramsey型实验,并且相干时间超过1秒。我们已经收集并分析了在各种实验条件下获得的200多个小时的拉姆西光谱数据。我们确定了可能会影响eEDM测量的几个系统错误,并估算了这些相互影响的大小。通过在eEDM具有相反符号的条件对下收集数据(例如,对两个Lambda双峰进行拉姆西光谱法),我们能够获得可以抑制其中一些系统影响的频率差。尽管我们的数据集包含我们有意改变实验参数以研究系统效果的运行,但我们实现了2.76 x 10-28 e·cm的1sigma统计灵敏度,并在2.82 x 10- 28 e·cm。最后,我们给出| de |的eEDM的初步上限。 <4.6 x 10-28 e·cm,置信度为90%。

著录项

  • 作者

    Grau, Matt.;

  • 作者单位

    University of Colorado at Boulder.;

  • 授予单位 University of Colorado at Boulder.;
  • 学科 Nuclear physics and radiation.;Physical chemistry.;Theoretical physics.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 152 p.
  • 总页数 152
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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