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Spectroscopy of short-lived radioactive molecules

机译:短寿命放射性分子的光谱学

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摘要

Abstract Molecular spectroscopy offers opportunities for the exploration of the fundamental laws of nature and the search for new particle physics beyond the standard model1–4. Radioactive molecules—in which one or more of the atoms possesses a radioactive nucleus—can contain heavy and deformed nuclei, offering high sensitivity for investigating parity- and time-reversal-violation effects5,6. Radium monofluoride, RaF, is of particular interest because it is predicted to have an electronic structure appropriate for laser cooling6, thus paving the way for its use in high-precision spectroscopic studies. Furthermore, the effects of symmetry-violating nuclear moments are strongly enhanced5,7–9 in molecules containing octupole-deformed radium isotopes10,11. However, the study of RaF has been impeded by the lack of stable isotopes of radium. Here we present an experimental approach to studying short-lived radioactive molecules, which allows us to measure molecules with lifetimes of just tens of milliseconds. Energetically low-lying electronic states were measured for different isotopically pure RaF molecules using collinear resonance ionisation at the ISOLDE ion-beam facility at CERN. Our results provide evidence of the existence of a suitable laser-cooling scheme for these molecules and represent a key step towards high-precision studies in these systems. Our findings will enable further studies of short-lived radioactive molecules for fundamental physics research.
机译:摘要分子光谱为探索自然基本规律和搜索标准模型1-4之外的新粒子物理学提供了机会。放射性分子 - 其中一个或多个原子具有放射性核 - 可含有重和变形的核,为调查平衡和时间反转违规影响提供高敏感性5,6。 Monofiroide,RAF是特别令人兴趣的,因为预计具有适合激光冷却的电子结构,因此铺平了其在高精度光谱研究中的应用。此外,对称违规核矩的影响在含有Octupole-变形镭同位素10,11的分子中强烈增强了5,7-9。然而,缺乏缺乏镭的rAF的研究已经阻碍了镭的稳定同位素。在这里,我们提出了一种研究短寿命放射性分子的实验方法,这使我们能够测量具有仅几十毫秒的寿命的分子。在Cern的Isolde离子束设施下使用共振共振电离,测量不同的同位素纯RAF分子测量能量低洼的电子状态。我们的结果提供了这些分子存在适当的激光冷却方案的证据,并代表了这些系统中高精度研究的关键步骤。我们的发现将能够进一步研究对基本物理研究的短期放射性分子。

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  • 来源
    《Nature》 |2020年第7809期|396-400|共5页
  • 作者单位

    CERN Geneva Switzerland|Massachusetts Institute of Technology Cambridge MA USA;

    Fachbereich Chemie Philipps-Universität Marburg Marburg Germany;

    Department of Physics and Astronomy The University of Manchester Manchester UK;

    Department of Physics and Astronomy The University of Manchester Manchester UK;

    Department of Physics and Astronomy The University of Manchester Manchester UK;

    Laboratory for Astrophysics Institute of Physics University of Kassel Kassel Germany;

    Massachusetts Institute of Technology Cambridge MA USA;

    CERN Geneva Switzerland;

    KU Leuven Instituut voor Kern- en Stralingsfysica Leuven Belgium;

    Department of Physics and Astronomy The University of Manchester Manchester UK;

    Department of Physics and Astronomy The University of Manchester Manchester UK|Photon Science Institute The University of Manchester Manchester UK;

    Laboratory for Astrophysics Institute of Physics University of Kassel Kassel Germany;

    Department of Physics University of Jyväskylä Jyväskylä Finland;

    Institut de Physique Nucleaire d’Orsay Orsay France;

    KU Leuven Instituut voor Kern- en Stralingsfysica Leuven Belgium;

    NRC ‘Kurchatov Institute’-PNPI Gatchina Russia;

    KU Leuven Instituut voor Kern- en Stralingsfysica Leuven Belgium;

    CERN Geneva Switzerland|KU Leuven Instituut voor Kern- en Stralingsfysica Leuven Belgium;

    Department of Physics and Astronomy The University of Manchester Manchester UK;

    Department of Physics and Astronomy The University of Manchester Manchester UK;

    CERN Geneva Switzerland;

    Institut für Physik Universität Greifswald Greifswald Germany;

    Department of Physics and Astronomy The University of Manchester Manchester UK;

    Institut für Physik Johannes Gutenberg-Universität Mainz Mainz Germany;

    CERN Geneva Switzerland|Institut für Physik Universität Greifswald Greifswald Germany;

    CERN Geneva Switzerland;

    School of Physics and State Key Laboratory of Nuclear Physics and Technology Peking University Beijing China;

  • 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
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 22:15:26

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