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一种基于高电荷离子的光学原子钟。

An optical atomic clock based on a highly charged ion.

机构信息

Physikalisch-Technische Bundesanstalt, Braunschweig, Germany.

Oxford Ionics, Begbroke, UK.

出版信息

Nature. 2022 Nov;611(7934):43-47. doi: 10.1038/s41586-022-05245-4. Epub 2022 Nov 2.

Abstract

Optical atomic clocks are the most accurate measurement devices ever constructed and have found many applications in fundamental science and technology. The use of highly charged ions (HCI) as a new class of references for highest-accuracy clocks and precision tests of fundamental physics has long been motivated by their extreme atomic properties and reduced sensitivity to perturbations from external electric and magnetic fields compared with singly charged ions or neutral atoms. Here we present the realization of this new class of clocks, based on an optical magnetic-dipole transition in Ar. Its comprehensively evaluated systematic frequency uncertainty of 2.2 × 10 is comparable with that of many optical clocks in operation. From clock comparisons, we improve by eight and nine orders of magnitude on the uncertainties for the absolute transition frequency and isotope shift (Ar versus Ar) (ref. ), respectively. These measurements allow us to investigate the largely unexplored quantum electrodynamic (QED) nuclear recoil, presented as part of improved calculations of the isotope shift, which reduce the uncertainty of previous theory by a factor of three. This work establishes forbidden optical transitions in HCI as references for cutting-edge optical clocks and future high-sensitivity searches for physics beyond the standard model.

摘要

光学原子钟是迄今为止最精确的测量设备,在基础科学和技术领域有许多应用。与单电荷离子或中性原子相比,高电荷离子(HCI)由于其极端的原子性质和对外电场和磁场干扰的敏感性降低,一直以来都被用作高精度时钟和基础物理精密测试的新型参考物质。在这里,我们展示了一种基于 Ar 的光学磁偶极跃迁的新型时钟的实现。它的综合评估系统频率不确定性为 2.2×10,与许多正在运行的光学时钟相当。通过时钟比较,我们分别将绝对跃迁频率和同位素位移(Ar 对 Ar)的不确定性提高了八个和九个数量级(参考文献)。这些测量使我们能够研究在很大程度上尚未探索的量子电动力学(QED)核反冲,这是改进同位素位移计算的一部分,该计算将先前理论的不确定性降低了三分之一。这项工作确立了 HCI 中的禁戒光学跃迁作为前沿光学时钟的参考物质,并为超越标准模型的物理的未来高灵敏度搜索奠定了基础。

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