Tag: Refereed Publication

  • Sympathetic cooling of positrons to cryogenic temperatures for antihydrogen production

    Sympathetic cooling of positrons to cryogenic temperatures for antihydrogen production

    The positron, the antiparticle of the electron, predicted by Dirac in 1931 and discovered by Anderson in 1933, plays a key role in many scientific and everyday endeavours. Notably, the positron is a constituent of antihydrogen, the only long-lived neutral antimatter bound state that can currently be synthesized at low energy, presenting a prominent system

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  • On the formation of antihydrogen beams using travelling optical lattices

    On the formation of antihydrogen beams using travelling optical lattices

    The production of beams of antihydrogen atoms using the dipole force provided by a travelling optical lattice to accelerate a sample of the anti-atoms held in a magnetic gradient atom trap is investigated. By considering current and near-future antihydrogen trapping capabilities we find that useful fluxes of the anti-atoms can be achieved with directional properties

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  • Laser cooling of antihydrogen atoms

    Laser cooling of antihydrogen atoms

    The photon—the quantum excitation of the electromagnetic field—is massless but carries momentum. A photon can therefore exert a force on an object upon collision. Slowing the translational motion of atoms and ions by application of such a force, known as laser cooling, was first demonstrated 40 years ago. It revolutionized atomic physics over the following

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  • Investigation of the fine structure of antihydrogen

    Investigation of the fine structure of antihydrogen

    At the historic Shelter Island Conference on the Foundations of Quantum Mechanics in 1947, Willis Lamb reported an unexpected feature in the fine structure of atomic hydrogen: a separation of the 2S1/2 and 2P1/2 states. The observation of this separation, now known as the Lamb shift, marked an important event in the evolution of modern

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  • Observation of the 1S–2P Lyman-α transition in antihydrogen

    Observation of the 1S–2P Lyman-α transition in antihydrogen

    In 1906, Theodore Lyman discovered his eponymous series of transitions in the extreme-ultraviolet region of the atomic hydrogen spectrum. The patterns in the hydrogen spectrum helped to establish the emerging theory of quantum mechanics, which we now know governs the world at the atomic scale. Since then, studies involving the Lyman-α line—the 1S–2P transition at

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  • Characterization of the 1S–2S transition in antihydrogen

    Characterization of the 1S–2S transition in antihydrogen

    In 1928, Dirac published an equation that combined quantum mechanics and special relativity. Negative-energy solutions to this equation, rather than being unphysical as initially thought, represented a class of hitherto unobserved and unimagined particles—antimatter. The existence of particles of antimatter was confirmed with the discovery of the positron (or anti-electron) by Anderson in 1932, but

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  • Axial to transverse energy mixing dynamics in octupole-based magnetostatic antihydrogen traps

    Axial to transverse energy mixing dynamics in octupole-based magnetostatic antihydrogen traps

    The nature of the trajectories of antihydrogen atoms confined in an octupole minimum-B trap is of great importance for upcoming spectroscopy, cooling, and gravity experiments. Of particular interest is the mixing time between the axial and transverse energies for the antiatoms. Here, using computer simulations, we establish that almost all trajectories are chaotic, and then

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  • Enhanced Control and Reproducibility of Non-Neutral Plasmas

    Enhanced Control and Reproducibility of Non-Neutral Plasmas

    The simultaneous control of the density and particle number of non-neutral plasmas confined in Penning-Malmberg traps is demonstrated. Control is achieved by setting the plasma’s density by applying a rotating electric field while simultaneously fixing its axial potential via evaporative cooling. This novel method is particularly useful for stabilizing positron plasmas, as the procedures used

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  • Antihydrogen accumulation for fundamental symmetry tests

    Antihydrogen accumulation for fundamental symmetry tests

    Antihydrogen, a positron bound to an antiproton, is the simplest anti-atom. Its structure and properties are expected to mirror those of the hydrogen atom. Prospects for precision comparisons of the two, as tests of fundamental symmetries, are driving a vibrant programme of research. In this regard, a limiting factor in most experiments is the availability

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  • Aspects of 1S-2S spectroscopy of trapped antihydrogen atoms

    Aspects of 1S-2S spectroscopy of trapped antihydrogen atoms

    Antihydrogen atoms are now routinely trapped in small numbers. One of the purposes of this effort is to make precision comparisons of the 1 S -2 S transition in hydrogen and antihydrogen as a precision test of the CPT theorem. We investigate, through calculations and simulations, various methods by which the 1 S -2 S

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