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Precise test of quantum electrodynamics and determination of fundamental constants with HD~+ ions

机译:量子电动力学的精确试验和HD〜+离子的基本常数的测定

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Bound three-body quantum systems are important for fundamental physics(1,2) because they enable tests of quantum electrodynamics theory and provide access to the fundamental constants of atomic physics and to nuclear properties. Molecular hydrogen ions, the simplest molecules, are representative of this class(3). The metastability of the vibration-rotation levels in their ground electronic states offers the potential for extremely high spectroscopic resolution. Consequently, these systems provide independent access to the Rydberg constant (R-infinity), the ratios of the electron mass to the proton mass (m(e)/m(p)) and of the electron mass to the deuteron mass (m(e)/m(d)), the proton and deuteron nuclear radii, and high-level tests of quantum electrodynamics(4). Conventional spectroscopy techniques for molecular ions(5-14) have long been unable to provide precision competitive with that of ab initio theory, which has greatly improved in recent years(15). Here we improve our rotational spectroscopy technique for a sympathetically cooled cluster of molecular ions stored in a linear radiofrequency trap(16) by nearly two orders in accuracy. We measured a set of hyperfine components of the fundamental rotational transition. An evaluation resulted in the most accurate test of a quantum-three-body prediction so far, at the level of 5 x 10(-11), limited by the current uncertainties of the fundamental constants. We determined the value of the fundamental constants combinations R(infinity)m(e)(m(p)(-1) + m(d)(-1)) and m(p)/m(e) with a fractional uncertainty of 2 x 10(-11), in agreement with, but more precise than, current Committee on Data for Science and Technology values. These results also provide strong evidence of the correctness of previous key high-precision measurements and a more than 20-fold stronger bound for a hypothetical fifth force between a proton and a deuteron.
机译:绑定的三体量子系统对于基本物理学(1,2)很重要,因为它们能够测试量子电动力学理论的测试,并提供对原子物理学的基本常数和核特性的访问。分子氢离子,最简单的分子,是该类(3)的代表。地面电子状态中的振动旋转水平的常温性提供极高的光谱分析的潜力。因此,这些系统提供了对Rydberg常数(R-Infinity)的独立访问,电子质量与质子质量的比率(M(e)/ m(p))和电子质量与氘核质量(m( e)/ m(d)),质子和氘核核心半径,以及量子电动动力学(4)的高级试验。用于分子离子(5-14)的常规光谱技术长期以来一直无法提供与AB Initio理论的精确竞争,近年来大大改善(15)。在这里,我们改善了旋转光谱技术,用于将在线性射频阱(16)中储存在线性射频捕集器(16)中的相同的分子离子簇的旋转光谱技术通过近两个订单精确率。我们测量了一组基本旋转过渡的高血清成分。评估导致到目前为止的量子三体预测的最精确测试,在5×10(-11)的水平,受到基本常数的当前不确定性的限制。我们确定了基本常数组合R(无穷大)M(e)(m(p)( - 1)+ m(d)( - 1))和m(p)/ m(e)的分数不确定性2 x 10(-11),同意,但比当前的科学和技术价值数据委员会更精确。这些结果还提供了先前关键高精度测量的正确性证据,并且在质子和氘核之间的假设第五次的假设第五次强的界限具有超过20倍。

著录项

  • 来源
    《Nature》 |2020年第7807期|152-158|共7页
  • 作者单位

    Heinrich Heine Univ Dusseldorf Inst Expt Phys Dusseldorf Germany;

    Heinrich Heine Univ Dusseldorf Inst Expt Phys Dusseldorf Germany;

    Heinrich Heine Univ Dusseldorf Inst Expt Phys Dusseldorf Germany|Univ Lille 1 Lab PhLAM CNRS UMR 8523 Villeneuve Dascq France;

    Joint Inst Nucl Res Bogoliubov Lab Theoret Phys Dubna Russia;

    Heinrich Heine Univ Dusseldorf Inst Expt Phys Dusseldorf Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 22:15:26

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