Literature DB >> 29459413

AEgIS at ELENA: outlook for physics with a pulsed cold antihydrogen beam.

M Doser1, S Aghion2,3, C Amsler4, G Bonomi5,6, R S Brusa7,8, M Caccia3,9, R Caravita10,11, F Castelli3,12, G Cerchiari13, D Comparat14, G Consolati2,3, A Demetrio15, L Di Noto10,11, C Evans2,3, M Fanì16,10,11, R Ferragut2,3, J Fesel16, A Fontana6, S Gerber16, M Giammarchi3, A Gligorova4, F Guatieri7,8, S Haider16, A Hinterberger16, H Holmestad17, A Kellerbauer13, O Khalidova16, D Krasnický11, V Lagomarsino10,11, P Lansonneur18, P Lebrun18, C Malbrunot16,4, S Mariazzi19, J Marton4, V Matveev20,21, Z Mazzotta3,12, S R Müller15, G Nebbia19, P Nedelec18, M Oberthaler15, N Pacifico16, D Pagano5,6, L Penasa7,8, V Petracek22, F Prelz3, M Prevedelli23, B Rienaecker16, J Robert14, O M Røhne17, A Rotondi6,24, H Sandaker17, R Santoro3,9, L Smestad16,25, F Sorrentino11, G Testera11, I C Tietje16, E Widmann4, P Yzombard13, C Zimmer16,13,26, J Zmeskal4, N Zurlo6,27.   

Abstract

The efficient production of cold antihydrogen atoms in particle traps at CERN's Antiproton Decelerator has opened up the possibility of performing direct measurements of the Earth's gravitational acceleration on purely antimatter bodies. The goal of the AEgIS collaboration is to measure the value of g for antimatter using a pulsed source of cold antihydrogen and a Moiré deflectometer/Talbot-Lau interferometer. The same antihydrogen beam is also very well suited to measuring precisely the ground-state hyperfine splitting of the anti-atom. The antihydrogen formation mechanism chosen by AEgIS is resonant charge exchange between cold antiprotons and Rydberg positronium. A series of technical developments regarding positrons and positronium (Ps formation in a dedicated room-temperature target, spectroscopy of the n=1-3 and n=3-15 transitions in Ps, Ps formation in a target at 10 K inside the 1 T magnetic field of the experiment) as well as antiprotons (high-efficiency trapping of [Formula: see text], radial compression to sub-millimetre radii of mixed [Formula: see text] plasmas in 1 T field, high-efficiency transfer of [Formula: see text] to the antihydrogen production trap using an in-flight launch and recapture procedure) were successfully implemented. Two further critical steps that are germane mainly to charge exchange formation of antihydrogen-cooling of antiprotons and formation of a beam of antihydrogen-are being addressed in parallel. The coming of ELENA will allow, in the very near future, the number of trappable antiprotons to be increased by more than a factor of 50. For the antihydrogen production scheme chosen by AEgIS, this will be reflected in a corresponding increase of produced antihydrogen atoms, leading to a significant reduction of measurement times and providing a path towards high-precision measurements.This article is part of the Theo Murphy meeting issue 'Antiproton physics in the ELENA era'.
© 2018 The Author(s).

Keywords:  antihydrogen; antiprotons; positronium; positrons

Year:  2018        PMID: 29459413      PMCID: PMC5829176          DOI: 10.1098/rsta.2017.0274

Source DB:  PubMed          Journal:  Philos Trans A Math Phys Eng Sci        ISSN: 1364-503X            Impact factor:   4.226


  7 in total

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Authors:  D B Cassidy; T H Hisakado; H W K Tom; A P Mills
Journal:  Phys Rev Lett       Date:  2012-01-26       Impact factor: 9.161

2.  Evaporative cooling of antiprotons to cryogenic temperatures.

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Journal:  Phys Rev Lett       Date:  2010-07-02       Impact factor: 9.161

3.  High-resolution spectroscopy on the laser-cooling candidate La^{-}.

Authors:  E Jordan; G Cerchiari; S Fritzsche; A Kellerbauer
Journal:  Phys Rev Lett       Date:  2015-09-08       Impact factor: 9.161

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Authors:  C H Storry; A Speck; D Le Sage; N Guise; G Gabrielse; D Grzonka; W Oelert; G Schepers; T Sefzick; H Pittner; M Herrmann; J Walz; T W Hänsch; D Comeau; E A Hessels
Journal:  Phys Rev Lett       Date:  2004-12-21       Impact factor: 9.161

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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

6.  Laser cooling of molecular anions.

Authors:  Pauline Yzombard; Mehdi Hamamda; Sebastian Gerber; Michael Doser; Daniel Comparat
Journal:  Phys Rev Lett       Date:  2015-05-27       Impact factor: 9.161

7.  A moiré deflectometer for antimatter.

Authors:  S Aghion; O Ahlén; C Amsler; A Ariga; T Ariga; A S Belov; K Berggren; G Bonomi; P Bräunig; J Bremer; R S Brusa; L Cabaret; C Canali; R Caravita; F Castelli; G Cerchiari; S Cialdi; D Comparat; G Consolati; H Derking; S Di Domizio; L Di Noto; M Doser; A Dudarev; A Ereditato; R Ferragut; A Fontana; P Genova; M Giammarchi; A Gligorova; S N Gninenko; S Haider; T Huse; E Jordan; L V Jørgensen; T Kaltenbacher; J Kawada; A Kellerbauer; M Kimura; A Knecht; D Krasnický; V Lagomarsino; S Lehner; A Magnani; C Malbrunot; S Mariazzi; V A Matveev; F Moia; G Nebbia; P Nédélec; M K Oberthaler; N Pacifico; V Petràček; C Pistillo; F Prelz; M Prevedelli; C Regenfus; C Riccardi; O Røhne; A Rotondi; H Sandaker; P Scampoli; J Storey; M A Subieta Vasquez; M Špaček; G Testera; R Vaccarone; E Widmann; S Zavatarelli; J Zmeskal
Journal:  Nat Commun       Date:  2014-07-28       Impact factor: 14.919

  7 in total
  2 in total

1.  Antiproton physics in the ELENA era.

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

2.  Laser cooling of antihydrogen atoms.

Authors:  C J Baker; W Bertsche; A Capra; C Carruth; C L Cesar; M Charlton; A Christensen; R Collister; A Cridland Mathad; S Eriksson; A Evans; N Evetts; J Fajans; T Friesen; M C Fujiwara; D R Gill; P Grandemange; P Granum; J S Hangst; W N Hardy; M E Hayden; D Hodgkinson; E Hunter; C A Isaac; M A Johnson; J M Jones; S A Jones; S Jonsell; A Khramov; P Knapp; L Kurchaninov; N Madsen; D Maxwell; J T K McKenna; S Menary; J M Michan; T Momose; P S Mullan; J J Munich; K Olchanski; A Olin; J Peszka; A Powell; P Pusa; C Ø Rasmussen; F Robicheaux; R L Sacramento; M Sameed; E Sarid; D M Silveira; D M Starko; C So; G Stutter; T D Tharp; A Thibeault; R I Thompson; D P van der Werf; J S Wurtele
Journal:  Nature       Date:  2021-03-31       Impact factor: 49.962

  2 in total

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