The ASACUSA antihydrogen and hydrogen program: results and prospects

Author:

Malbrunot C.12ORCID,Amsler C.2,Arguedas Cuendis S.2,Breuker H.3,Dupre P.3,Fleck M.2,Higaki H.4,Kanai Y.5,Kolbinger B.2,Kuroda N.6,Leali M.78,Mäckel V.2,Mascagna V.78,Massiczek O.2,Matsuda Y.6,Nagata Y.9,Simon M. C.2,Spitzer H.2,Tajima M.6,Ulmer S.3ORCID,Venturelli L.78,Widmann E.2,Wiesinger M.2,Yamazaki Y.3,Zmeskal J.2

Affiliation:

1. Experimental Physics Department, CERN, Genève 23, 1211, Switzerland

2. Stefan-Meyer-Institut für Subatomare Physik, Österreichische Akademie der Wissenschaften, Boltzmanngasse 3, 1090 Wien, Austria

3. Ulmer Fundamental Symmetries Laboratory, RIKEN, Wako, Saitama 351-0198, Japan

4. Graduate School of Advanced Sciences of Matter, Hiroshima University, Hiroshima 739-8530, Japan

5. Nishina Center for Accelerator-Based Science, RIKEN, Wako, Saitama 351-0198, Japan

6. Institute of Physics, The University of Tokyo, Komaba, Meguro-ku, Tokyo 153-8902, Japan

7. Dipartimento di Ingegneria dell’Informazione, Università di Brescia, Brescia 25133, Italy

8. Istituto Nazionale di Fisica Nucleare, Sez. di Pavia, 27100 Pavia, Italy

9. Department of Physics, Tokyo University of Science, Shinjuku, Tokyo 162-8601, Japan

Abstract

The goal of the ASACUSA-CUSP collaboration at the Antiproton Decelerator of CERN is to measure the ground-state hyperfine splitting of antihydrogen using an atomic spectroscopy beamline. A milestone was achieved in 2012 through the detection of 80 antihydrogen atoms 2.7 m away from their production region. This was the first observation of ‘cold’ antihydrogen in a magnetic field free region. In parallel to the progress on the antihydrogen production, the spectroscopy beamline was tested with a source of hydrogen. This led to a measurement at a relative precision of 2.7×10 −9 which constitutes the most precise measurement of the hydrogen hyperfine splitting in a beam. Further measurements with an upgraded hydrogen apparatus are motivated by CPT and Lorentz violation tests in the framework of the Standard Model Extension. Unlike for hydrogen, the antihydrogen experiment is complicated by the difficulty of synthesizing enough cold antiatoms in the ground state. The first antihydrogen quantum states scan at the entrance of the spectroscopy apparatus was realized in 2016 and is presented here. The prospects for a ppm measurement are also discussed. This article is part of the Theo Murphy meeting issue ‘Antiproton physics in the ELENA era’.

Funder

European Research Council under European Union's Seventh Framework Programme

Austrian Ministry of Science and Research, the Austrian Science Fund

Grant-in-Aid for Specially Promoted Research

Publisher

The Royal Society

Subject

General Physics and Astronomy,General Engineering,General Mathematics

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