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在阿尔法实验中对捕获的反氢进行的精确测量。

Precision measurements on trapped antihydrogen in the ALPHA experiment.

作者信息

Eriksson S

机构信息

Department of Physics, College of Science, Swansea University, Singleton Park, Swansea SA2 8PP, UK

出版信息

Philos Trans A Math Phys Eng Sci. 2018 Mar 28;376(2116). doi: 10.1098/rsta.2017.0268.

Abstract

Both the 1S-2S transition and the ground state hyperfine spectrum have been observed in trapped antihydrogen. The former constitutes the first observation of resonant interaction of light with an anti-atom, and the latter is the first detailed measurement of a spectral feature in antihydrogen. Owing to the narrow intrinsic linewidth of the 1S-2S transition and use of two-photon laser excitation, the transition energy can be precisely determined in both hydrogen and antihydrogen, allowing a direct comparison as a test of fundamental symmetry. The result is consistent with CPT invariance at a relative precision of around 2×10 This constitutes the most precise measurement of a property of antihydrogen. The hyperfine spectrum of antihydrogen is determined to a relative uncertainty of 4×10 The excited state and the hyperfine spectroscopy techniques currently both show sensitivity at the few 100 kHz level on the absolute scale. Here, the most recent work of the ALPHA collaboration on precision spectroscopy of antihydrogen is presented together with an outlook on improving the precision of measurements involving lasers and microwave radiation. Prospects of measuring the Lamb shift and determining the antiproton charge radius in trapped antihydrogen in the ALPHA apparatus are presented. Future perspectives of precision measurements of trapped antihydrogen in the ALPHA apparatus when the ELENA facility becomes available to experiments at CERN are discussed.This article is part of the Theo Murphy meeting issue 'Antiproton physics in the ELENA era'.

摘要

在捕获的反氢原子中,已经观测到了1S-2S跃迁和基态超精细光谱。前者是光与反原子共振相互作用的首次观测,后者是反氢原子光谱特征的首次详细测量。由于1S-2S跃迁固有的窄线宽以及双光子激光激发的应用,在氢原子和反氢原子中都可以精确测定跃迁能量,从而能够进行直接比较以检验基本对称性。结果在约2×10的相对精度上与CPT不变性一致。这构成了对反氢原子性质的最精确测量。反氢原子的超精细光谱的相对不确定度被确定为4×10。目前,激发态和超精细光谱技术在绝对尺度上都显示出在几百千赫兹水平的灵敏度。在此,介绍了阿尔法合作组在反氢原子精密光谱学方面的最新工作,以及关于提高涉及激光和微波辐射测量精度的展望。还介绍了在阿尔法装置中测量兰姆位移和确定捕获的反氢原子中反质子电荷半径的前景。讨论了当欧洲核子研究中心的ELENA设施可供实验使用时,阿尔法装置中捕获的反氢原子精密测量的未来前景。本文是西奥·墨菲会议文集“ELENA时代的反质子物理学”的一部分。

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引用本文的文献

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Investigation of the fine structure of antihydrogen.反氢的精细结构研究。
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本文引用的文献

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Observation of the hyperfine spectrum of antihydrogen.反氢的精细光谱观测。
Nature. 2017 Aug 2;548(7665):66-69. doi: 10.1038/nature23446.
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Observation of the 1S-2S transition in trapped antihydrogen.囚禁反氢的 1S-2S 跃迁观测。
Nature. 2017 Jan 26;541(7638):506-510. doi: 10.1038/nature21040. Epub 2016 Dec 19.
7
An experimental limit on the charge of antihydrogen.反氢电荷的实验限制。
Nat Commun. 2014 Jun 3;5:3955. doi: 10.1038/ncomms4955.
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Improved measurement of the hydrogen 1S-2S transition frequency.氢 1S-2S 跃迁频率的改进测量。
Phys Rev Lett. 2011 Nov 11;107(20):203001. doi: 10.1103/PhysRevLett.107.203001.

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