Literature DB >> 28005057

Observation of the 1S-2S transition in trapped antihydrogen.

M Ahmadi1, B X R Alves2, C J Baker3, W Bertsche4,5, E Butler6, A Capra7, C Carruth8, C L Cesar9, M Charlton3, S Cohen10, R Collister7, S Eriksson3, A Evans11, N Evetts12, J Fajans8, T Friesen2, M C Fujiwara7, D R Gill7, A Gutierrez13, J S Hangst2, W N Hardy12, M E Hayden14, C A Isaac3, A Ishida15, M A Johnson4,5, S A Jones3, S Jonsell16, L Kurchaninov7, N Madsen3, M Mathers17, D Maxwell3, J T K McKenna7, S Menary17, J M Michan7,18, T Momose12, J J Munich14, P Nolan1, K Olchanski7, A Olin7,19, P Pusa1, C Ø Rasmussen2, F Robicheaux20, R L Sacramento9, M Sameed3, E Sarid21, D M Silveira9, S Stracka22, G Stutter2, C So11, T D Tharp23, J E Thompson17, R I Thompson11, D P van der Werf3,24, J S Wurtele8.   

Abstract

The spectrum of the hydrogen atom has played a central part in fundamental physics over the past 200 years. Historical examples of its importance include the wavelength measurements of absorption lines in the solar spectrum by Fraunhofer, the identification of transition lines by Balmer, Lyman and others, the empirical description of allowed wavelengths by Rydberg, the quantum model of Bohr, the capability of quantum electrodynamics to precisely predict transition frequencies, and modern measurements of the 1S-2S transition by Hänsch to a precision of a few parts in 1015. Recent technological advances have allowed us to focus on antihydrogen-the antimatter equivalent of hydrogen. The Standard Model predicts that there should have been equal amounts of matter and antimatter in the primordial Universe after the Big Bang, but today's Universe is observed to consist almost entirely of ordinary matter. This motivates the study of antimatter, to see if there is a small asymmetry in the laws of physics that govern the two types of matter. In particular, the CPT (charge conjugation, parity reversal and time reversal) theorem, a cornerstone of the Standard Model, requires that hydrogen and antihydrogen have the same spectrum. Here we report the observation of the 1S-2S transition in magnetically trapped atoms of antihydrogen. We determine that the frequency of the transition, which is driven by two photons from a laser at 243 nanometres, is consistent with that expected for hydrogen in the same environment. This laser excitation of a quantum state of an atom of antimatter represents the most precise measurement performed on an anti-atom. Our result is consistent with CPT invariance at a relative precision of about 2 × 10-10.

Entities:  

Year:  2016        PMID: 28005057     DOI: 10.1038/nature21040

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  17 in total

1.  Two-Photon Spectroscopy of Trapped Atomic Hydrogen.

Authors: 
Journal:  Phys Rev Lett       Date:  1996-07-08       Impact factor: 9.161

2.  Trapped antihydrogen.

Authors:  G B Andresen; M D Ashkezari; M Baquero-Ruiz; W Bertsche; P D Bowe; E Butler; C L Cesar; S Chapman; M Charlton; A Deller; S Eriksson; J Fajans; T Friesen; M C Fujiwara; D R Gill; A Gutierrez; J S Hangst; W N Hardy; M E Hayden; A J Humphries; R Hydomako; M J Jenkins; S Jonsell; L V Jørgensen; L Kurchaninov; N Madsen; S Menary; P Nolan; K Olchanski; A Olin; A Povilus; P Pusa; F Robicheaux; E Sarid; S Seif el Nasr; D M Silveira; C So; J W Storey; R I Thompson; D P van der Werf; J S Wurtele; Y Yamazaki
Journal:  Nature       Date:  2010-11-17       Impact factor: 49.962

3.  High-precision comparison of the antiproton-to-proton charge-to-mass ratio.

Authors:  S Ulmer; C Smorra; A Mooser; K Franke; H Nagahama; G Schneider; T Higuchi; S Van Gorp; K Blaum; Y Matsuda; W Quint; J Walz; Y Yamazaki
Journal:  Nature       Date:  2015-08-13       Impact factor: 49.962

4.  Synthesis of cold antihydrogen in a cusp trap.

Authors:  Y Enomoto; N Kuroda; K Michishio; C H Kim; H Higaki; Y Nagata; Y Kanai; H A Torii; M Corradini; M Leali; E Lodi-Rizzini; V Mascagna; L Venturelli; N Zurlo; K Fujii; M Ohtsuka; K Tanaka; H Imao; Y Nagashima; Y Matsuda; B Juhász; A Mohri; Y Yamazaki
Journal:  Phys Rev Lett       Date:  2010-12-07       Impact factor: 9.161

5.  Buffer-gas cooling of antiprotonic helium to 1.5 to 1.7 K, and antiproton-to-electron mass ratio.

Authors:  Masaki Hori; Hossein Aghai-Khozani; Anna Sótér; Daniel Barna; Andreas Dax; Ryugo Hayano; Takumi Kobayashi; Yohei Murakami; Koichi Todoroki; Hiroyuki Yamada; Dezső Horváth; Luca Venturelli
Journal:  Science       Date:  2016-11-04       Impact factor: 47.728

6.  Background-free observation of cold antihydrogen with field-ionization analysis of its states.

Authors:  G Gabrielse; N S Bowden; P Oxley; A Speck; C H Storry; J N Tan; M Wessels; D Grzonka; W Oelert; G Schepers; T Sefzick; J Walz; H Pittner; T W Hänsch; E A Hessels
Journal:  Phys Rev Lett       Date:  2002-10-31       Impact factor: 9.161

7.  An improved limit on the charge of antihydrogen from stochastic acceleration.

Authors:  M Ahmadi; M Baquero-Ruiz; W Bertsche; E Butler; A Capra; C Carruth; C L Cesar; M Charlton; A E Charman; S Eriksson; L T Evans; N Evetts; J Fajans; T Friesen; M C Fujiwara; D R Gill; A Gutierrez; J S Hangst; W N Hardy; M E Hayden; C A Isaac; A Ishida; S A Jones; S Jonsell; L Kurchaninov; N Madsen; D Maxwell; J T K McKenna; S Menary; J M Michan; T Momose; J J Munich; P Nolan; K Olchanski; A Olin; A Povilus; P Pusa; C Ø Rasmussen; F Robicheaux; R L Sacramento; M Sameed; E Sarid; D M Silveira; C So; T D Tharp; R I Thompson; D P van der Werf; J S Wurtele; A I Zhmoginov
Journal:  Nature       Date:  2016-01-21       Impact factor: 49.962

8.  Laser spectroscopy of muonic deuterium.

Authors:  Randolf Pohl; François Nez; Luis M P Fernandes; Fernando D Amaro; François Biraben; João M R Cardoso; Daniel S Covita; Andreas Dax; Satish Dhawan; Marc Diepold; Adolf Giesen; Andrea L Gouvea; Thomas Graf; Theodor W Hänsch; Paul Indelicato; Lucile Julien; Paul Knowles; Franz Kottmann; Eric-Olivier Le Bigot; Yi-Wei Liu; José A M Lopes; Livia Ludhova; Cristina M B Monteiro; Françoise Mulhauser; Tobias Nebel; Paul Rabinowitz; Joaquim M F dos Santos; Lukas A Schaller; Karsten Schuhmann; Catherine Schwob; David Taqqu; João F C A Veloso; Aldo Antognini
Journal:  Science       Date:  2016-08-12       Impact factor: 47.728

9.  Description and first application of a new technique to measure the gravitational mass of antihydrogen.

Authors:  A E Charman; C Amole; M D Ashkezari; M Baquero-Ruiz; W Bertsche; E Butler; A Capra; C L Cesar; M Charlton; S Eriksson; J Fajans; T Friesen; M C Fujiwara; D R Gill; A Gutierrez; J S Hangst; W N Hardy; M E Hayden; C A Isaac; S Jonsell; L Kurchaninov; A Little; N Madsen; J T K McKenna; S Menary; S C Napoli; P Nolan; A Olin; P Pusa; C Ø Rasmussen; F Robicheaux; E Sarid; D M Silveira; C So; R I Thompson; D P van der Werf; J S Wurtele; A I Zhmoginov
Journal:  Nat Commun       Date:  2013       Impact factor: 14.919

10.  An experimental limit on the charge of antihydrogen.

Authors:  C Amole; M D Ashkezari; M Baquero-Ruiz; W Bertsche; E Butler; A Capra; C L Cesar; M Charlton; S Eriksson; J Fajans; T Friesen; M C Fujiwara; D R Gill; A Gutierrez; J S Hangst; W N Hardy; M E Hayden; C A Isaac; S Jonsell; L Kurchaninov; A Little; N Madsen; J T K McKenna; S Menary; S C Napoli; P Nolan; K Olchanski; A Olin; A Povilus; P Pusa; C Ø Rasmussen; F Robicheaux; E Sarid; D M Silveira; C So; T D Tharp; R I Thompson; D P van der Werf; Z Vendeiro; J S Wurtele; A I Zhmoginov; A E Charman
Journal:  Nat Commun       Date:  2014-06-03       Impact factor: 14.919

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  18 in total

1.  Estimation of antihydrogen properties in experiments with small signal deficit.

Authors:  B Radics
Journal:  Proc Math Phys Eng Sci       Date:  2019-03-13       Impact factor: 2.704

2.  The race to reveal antimatter's secrets.

Authors:  Elizabeth Gibney
Journal:  Nature       Date:  2017-08-02       Impact factor: 49.962

3.  Observation of the hyperfine spectrum of antihydrogen.

Authors:  M Ahmadi; B X R Alves; C J Baker; W Bertsche; E Butler; A Capra; C Carruth; C L Cesar; M Charlton; S Cohen; R Collister; S Eriksson; A Evans; N Evetts; J Fajans; T Friesen; M C Fujiwara; D R Gill; A Gutierrez; J S Hangst; W N Hardy; M E Hayden; C A Isaac; A Ishida; M A Johnson; S A Jones; S Jonsell; L Kurchaninov; N Madsen; M Mathers; D Maxwell; J T K McKenna; S Menary; J M Michan; T Momose; J J Munich; P Nolan; K Olchanski; A Olin; P Pusa; C Ø Rasmussen; F Robicheaux; R L Sacramento; M Sameed; E Sarid; D M Silveira; S Stracka; G Stutter; C So; T D Tharp; J E Thompson; R I Thompson; D P van der Werf; J S Wurtele
Journal:  Nature       Date:  2017-08-02       Impact factor: 49.962

4.  Physics: Optical transition seen in antihydrogen.

Authors:  Stefan Ulmer
Journal:  Nature       Date:  2017-01-25       Impact factor: 49.962

Review 5.  Prospects for testing Lorentz and CPT symmetry with antiprotons.

Authors:  Arnaldo J Vargas
Journal:  Philos Trans A Math Phys Eng Sci       Date:  2018-03-28       Impact factor: 4.226

Review 6.  Recent progress of laser spectroscopy experiments on antiprotonic helium.

Authors:  Masaki Hori
Journal:  Philos Trans A Math Phys Eng Sci       Date:  2018-03-28       Impact factor: 4.226

7.  Precision measurements on trapped antihydrogen in the ALPHA experiment.

Authors:  S Eriksson
Journal:  Philos Trans A Math Phys Eng Sci       Date:  2018-03-28       Impact factor: 4.226

8.  Laser spectroscopy of pionic helium atoms.

Authors:  Masaki Hori; Hossein Aghai-Khozani; Anna Sótér; Andreas Dax; Daniel Barna
Journal:  Nature       Date:  2020-05-06       Impact factor: 49.962

9.  Cathepsin F is a potential marker for senescent human skin fibroblasts and keratinocytes associated with skin aging.

Authors:  Kento Takaya; Toru Asou; Kazuo Kishi
Journal:  Geroscience       Date:  2022-09-03       Impact factor: 7.581

10.  In-beam measurement of the hydrogen hyperfine splitting and prospects for antihydrogen spectroscopy.

Authors:  M Diermaier; C B Jepsen; B Kolbinger; C Malbrunot; O Massiczek; C Sauerzopf; M C Simon; J Zmeskal; E Widmann
Journal:  Nat Commun       Date:  2017-06-12       Impact factor: 14.919

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