Literature DB >> 21085118

Trapped antihydrogen.

G B Andresen1, 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.   

Abstract

Antimatter was first predicted in 1931, by Dirac. Work with high-energy antiparticles is now commonplace, and anti-electrons are used regularly in the medical technique of positron emission tomography scanning. Antihydrogen, the bound state of an antiproton and a positron, has been produced at low energies at CERN (the European Organization for Nuclear Research) since 2002. Antihydrogen is of interest for use in a precision test of nature's fundamental symmetries. The charge conjugation/parity/time reversal (CPT) theorem, a crucial part of the foundation of the standard model of elementary particles and interactions, demands that hydrogen and antihydrogen have the same spectrum. Given the current experimental precision of measurements on the hydrogen atom (about two parts in 10(14) for the frequency of the 1s-to-2s transition), subjecting antihydrogen to rigorous spectroscopic examination would constitute a compelling, model-independent test of CPT. Antihydrogen could also be used to study the gravitational behaviour of antimatter. However, so far experiments have produced antihydrogen that is not confined, precluding detailed study of its structure. Here we demonstrate trapping of antihydrogen atoms. From the interaction of about 10(7) antiprotons and 7 × 10(8) positrons, we observed 38 annihilation events consistent with the controlled release of trapped antihydrogen from our magnetic trap; the measured background is 1.4 ± 1.4 events. This result opens the door to precision measurements on anti-atoms, which can soon be subjected to the same techniques as developed for hydrogen.

Entities:  

Year:  2010        PMID: 21085118     DOI: 10.1038/nature09610

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


  13 in total

1.  Cooling and slowing of trapped antiprotons below 100 meV.

Authors: 
Journal:  Phys Rev Lett       Date:  1989-09-25       Impact factor: 9.161

2.  Evaporative cooling of antiprotons to cryogenic temperatures.

Authors:  G B Andresen; M D Ashkezari; M Baquero-Ruiz; W Bertsche; P D Bowe; E Butler; C L Cesar; S Chapman; M Charlton; J Fajans; T Friesen; M C Fujiwara; D R Gill; J S Hangst; W N Hardy; R S Hayano; M E Hayden; A Humphries; R Hydomako; S Jonsell; L Kurchaninov; R Lambo; N Madsen; S Menary; P Nolan; K Olchanski; A Olin; A Povilus; P Pusa; F Robicheaux; E Sarid; D M Silveira; C So; J W Storey; R I Thompson; D P van der Werf; D Wilding; J S Wurtele; Y Yamazaki
Journal:  Phys Rev Lett       Date:  2010-07-02       Impact factor: 9.161

3.  Effects of extreme magnetic quadrupole fields on penning traps and the consequences for antihydrogen trapping.

Authors:  J Fajans; W Bertsche; K Burke; S F Chapman; D P van der Werf
Journal:  Phys Rev Lett       Date:  2005-10-04       Impact factor: 9.161

4.  New source of dense, cryogenic positron plasmas.

Authors:  L V Jørgensen; M Amoretti; G Bonomi; P D Bowe; C Canali; C Carraro; C L Cesar; M Charlton; M Doser; A Fontana; M C Fujiwara; R Funakoshi; P Genova; J S Hangst; R S Hayano; A Kellerbauer; V Lagomarsino; R Landua; E Lodi Rizzini; M Macrì; N Madsen; D Mitchard; P Montagna; A Rotondi; G Testera; A Variola; L Venturelli; D P van der Werf; Y Yamazaki
Journal:  Phys Rev Lett       Date:  2005-07-07       Impact factor: 9.161

5.  Antimatter plasmas in a multipole trap for antihydrogen.

Authors:  G Andresen; W Bertsche; A Boston; P D Bowe; C L Cesar; S Chapman; M Charlton; M Chartier; A Deutsch; J Fajans; M C Fujiwara; R Funakoshi; D R Gill; K Gomberoff; J S Hangst; R S Hayano; R Hydomako; M J Jenkins; L V Jørgensen; L Kurchaninov; N Madsen; P Nolan; K Olchanski; A Olin; A Povilus; F Robicheaux; E Sarid; D M Silveira; J W Storey; H H Telle; R I Thompson; D P van der Werf; J S Wurtele; Y Yamazaki
Journal:  Phys Rev Lett       Date:  2007-01-11       Impact factor: 9.161

6.  Antiproton, positron, and electron imaging with a microchannel plate/phosphor detector.

Authors:  G B Andresen; W Bertsche; P D Bowe; C C Bray; E Butler; C L Cesar; S Chapman; M Charlton; J Fajans; M C Fujiwara; D R Gill; J S Hangst; W N Hardy; R S Hayano; M E Hayden; A J Humphries; R Hydomako; L V Jørgensen; S J Kerrigan; L Kurchaninov; R Lambo; N Madsen; P Nolan; K Olchanski; A Olin; A P Povilus; P Pusa; E Sarid; S Seif El Nasr; D M Silveira; J W Storey; R I Thompson; D P van der Werf; Y Yamazaki
Journal:  Rev Sci Instrum       Date:  2009-12       Impact factor: 1.523

7.  Compression of antiproton clouds for antihydrogen trapping.

Authors:  G B Andresen; W Bertsche; P D Bowe; C C Bray; E Butler; C L Cesar; S Chapman; M Charlton; J Fajans; M C Fujiwara; R Funakoshi; D R Gill; J S Hangst; W N Hardy; R S Hayano; M E Hayden; R Hydomako; M J Jenkins; L V Jørgensen; L Kurchaninov; R Lambo; N Madsen; P Nolan; K Olchanski; A Olin; A Povilus; P Pusa; F Robicheaux; E Sarid; S Seif El Nasr; D M Silveira; J W Storey; R I Thompson; D P van der Werf; J S Wurtele; Y Yamazaki
Journal:  Phys Rev Lett       Date:  2008-05-19       Impact factor: 9.161

8.  Autoresonant transition in the presence of noise and self-fields.

Authors:  I Barth; L Friedland; E Sarid; A G Shagalov
Journal:  Phys Rev Lett       Date:  2009-10-07       Impact factor: 9.161

9.  Measurement of the hydrogen 1S- 2S transition frequency by phase coherent comparison with a microwave cesium fountain clock

Authors: 
Journal:  Phys Rev Lett       Date:  2000-06-12       Impact factor: 9.161

10.  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

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  21 in total

1.  Resonant quantum transitions in trapped antihydrogen atoms.

Authors:  C Amole; M D Ashkezari; M Baquero-Ruiz; W Bertsche; P D Bowe; E Butler; A Capra; C L Cesar; M Charlton; A Deller; P H Donnan; 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; 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; P Pusa; C Ø Rasmussen; F Robicheaux; E Sarid; C R Shields; D M Silveira; S Stracka; C So; R I Thompson; D P van der Werf; J S Wurtele
Journal:  Nature       Date:  2012-03-07       Impact factor: 49.962

2.  Antimatter held for questioning.

Authors:  Eugenie Samuel Reich
Journal:  Nature       Date:  2010-11-18       Impact factor: 49.962

3.  Bohr's model: Extreme atoms.

Authors:  Richard Van Noorden
Journal:  Nature       Date:  2013-06-06       Impact factor: 49.962

4.  Antimatter cooled by laser light.

Authors:  Masaki Hori
Journal:  Nature       Date:  2021-04       Impact factor: 49.962

5.  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

6.  Physics: Optical transition seen in antihydrogen.

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

7.  Observation of the 1S-2S transition in trapped 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:  2016-12-19       Impact factor: 49.962

8.  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

9.  Two-photon laser spectroscopy of antiprotonic helium and the antiproton-to-electron mass ratio.

Authors:  Masaki Hori; Anna Sótér; Daniel Barna; Andreas Dax; Ryugo Hayano; Susanne Friedreich; Bertalan Juhász; Thomas Pask; Eberhard Widmann; Dezso Horváth; Luca Venturelli; Nicola Zurlo
Journal:  Nature       Date:  2011-07-27       Impact factor: 49.962

10.  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

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