Antihydrogen formation by autoresonant excitation of antiproton plasmas
Creators
- Bertsche, William Alan1
- Andresen, G. B.2
- Ashkezari, M. D.3
- Baquero-Ruiz, M.4
- Bowe, P. D.2
- Carpenter, P. T.5
- Butler, E.6
- Cesar, C. L.7
- Chapman, S. F.4
- Charlton, M.1
- Eriksson, S.1
- Fajans, J.4
- Friesen, T.8
- Fujiwara, M. C.9
- Gill, D. R.9
- Gutierrez, A.10
- Hangst, J. S.2
- Hardy, W. N.10
- Hayano, R. S.11
- Hayden, M. E.3
- and others
- ALPHA Collaboration
- 1. Swansea University, Department of Physics (United Kingdom)
- 2. Aarhus University, Department of Physics and Astronomy (Denmark)
- 3. Simon Fraser University, Department of Physics (Canada)
- 4. University of California, Department of Physics (United States)
- 5. Auburn University, Department of Physics (United States)
- 6. CERN, Physics Department (Switzerland)
- 7. Universidade Federal do Rio de Janeiro, Instituto de Física (Brazil)
- 8. University of Calgary, Department of Physics and Astronomy (Canada)
- 9. TRIUMF (Canada)
- 10. University of British Columbia, Department of Physics and Astronomy (Canada)
- 11. University of Tokyo, Department of Physics (Japan)
Description
In efforts to trap antihydrogen, a key problem is the vast disparity between the neutral trap energy scale (∼ 50 μeV), and the energy scales associated with plasma confinement and space charge (∼1 eV). In order to merge charged particle species for direct recombination, the larger energy scale must be overcome in a manner that minimizes the initial antihydrogen kinetic energy. This issue motivated the development of a novel injection technique utilizing the inherent nonlinear nature of particle oscillations in our traps. We demonstrated controllable excitation of the center-of-mass longitudinal motion of a thermal antiproton plasma using a swept-frequency autoresonant drive. When the plasma is cold, dense and highly collective in nature, we observe that the entire system behaves as a single-particle nonlinear oscillator, as predicted by a recent theory. In contrast, only a fraction of the antiprotons in a warm or tenuous plasma can be similarly excited. Antihydrogen was produced and trapped by using this technique to drive antiprotons into a positron plasma, thereby initiating atomic recombination. The nature of this injection overcomes some of the difficulties associated with matching the energies of the charged species used to produce antihydrogen.
Additional details
Identifiers
Publishing Information
- Journal Title
- Hyperfine Interactions
- Journal Volume
- 212
- Journal Issue
- 1-3
- Journal Page Range
- p. 61-67
- ISSN
- 0304-3843
- CODEN
- HYINDN
Conference
- Title
- 10. international conference on low energy antiproton physics
- Acronym
- LEAP 2011
- Dates
- 27 Apr - 1 May 2011
- Place
- Vancouver (Canada)
INIS
- Country of Publication
- Netherlands
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 44034389
- Subject category
- S74: ATOMIC AND MOLECULAR PHYSICS;
- Resource subtype / Literary indicator
- Conference
- Descriptors DEI
- ANTIPROTONS; CENTER-OF-MASS SYSTEM; CHARGED PARTICLES; EV RANGE; EXCITATION; HYDROGEN; KINETIC ENERGY; NONLINEAR PROBLEMS; OSCILLATIONS; OSCILLATORS; PLASMA; PLASMA BEAM INJECTION; PLASMA CONFINEMENT; POSITRONS; RECOMBINATION; SPACE CHARGE; TRAPPING; TRAPS
- Descriptors DEC
- ANTIBARYONS; ANTILEPTONS; ANTIMATTER; ANTINUCLEI; ANTINUCLEONS; ANTIPARTICLES; BARYONS; BEAM INJECTION; CONFINEMENT; ELECTRONIC EQUIPMENT; ELEMENTARY PARTICLES; ELEMENTS; ENERGY; ENERGY RANGE; ENERGY-LEVEL TRANSITIONS; EQUIPMENT; FERMIONS; HADRONS; LEPTONS; MATTER; NONMETALS; NUCLEI; NUCLEONS; PROTONS
Optional Information
- Copyright
- Copyright (c) 2011 Springer Science+Business Media B.V.
- Collaborations
- ALPHA Collaboration