Tag: Publication

  • An experimental limit on the charge of antihydrogen

    An experimental limit on the charge of antihydrogen

    The properties of antihydrogen are expected to be identical to those of hydrogen, and any differences would constitute a profound challenge to the fundamental theories of physics. The most commonly discussed antiatom-based tests of these theories are searches for antihydrogen-hydrogen spectral differences (tests of CPT (charge-parity-time) invariance) or gravitational differences (tests of the weak equivalence

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  • Microwave Spectroscopy Of Magnetically Trapped Atomic Antihydrogen

    Microwave Spectroscopy Of Magnetically Trapped Atomic Antihydrogen

    We have every reason to believe that equal amounts of matter and antimatter were produced in the early universe. Moreover, theory predicts that the laws of physics make no distinction between the two. In this light, the fact that the observable universe is overwhelmingly dominated by matter is inexplicable. ALPHA is an international project located

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  • Probing Trapped Antihydrogen: In Situ Diagnostics And Observations Of Quantum Transitions

    Probing Trapped Antihydrogen: In Situ Diagnostics And Observations Of Quantum Transitions

    Antihydrogen, the bound state of a positron and an antiproton, is the simplest pure anti-atomic system and an excellent candidate to test the symmetry between matter and antimatter. This thesis focuses on the magnetic confinement of antihydrogen and the first ever resonant interaction with trapped antihydrogen, as performed by the ALPHA collaboration. The ALPHA apparatus

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  • In situ electromagnetic field diagnostics with an electron plasma in a Penning–Malmberg trap

    In situ electromagnetic field diagnostics with an electron plasma in a Penning–Malmberg trap

    We demonstrate a novel detection method for the cyclotron resonance frequency of an electron plasma in a Penning–Malmberg trap. With this technique, the electron plasma is used as an in situ diagnostic tool for the measurement of the static magnetic field and the microwave electric field in the trap. The cyclotron motion of the electron

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  • The ALPHA antihydrogen trapping apparatus

    The ALPHA antihydrogen trapping apparatus

    The ALPHA collaboration, based at CERN, has recently succeeded in confining cold antihydrogen atoms in a magnetic minimum neutral atom trap and has performed the first study of a resonant transition of the anti-atoms. The ALPHA apparatus will be described herein, with emphasis on the structural aspects, diagnostic methods and techniques that have enabled antihydrogen

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  • Silicon vertex detector upgrade in the ALPHA experiment

    Silicon vertex detector upgrade in the ALPHA experiment

    The Silicon Vertex Detector (SVD) is the main diagnostic tool in the ALPHA-experiment. It provides precise spatial and timing information of antiproton (antihydrogen) annihilation events (vertices), and most importantly, the SVD is capable of directly identifying and analysing single annihilation events, thereby forming the basis of ALPHA’s analysis. This paper describes the ALPHA SVD and

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  • Nonlinear dynamics of anti-hydrogen in magnetostatic traps: implications for gravitational measurements

    Nonlinear dynamics of anti-hydrogen in magnetostatic traps: implications for gravitational measurements

    The influence of gravity on anti-hydrogen dynamics in magnetic traps is studied. The advantages and disadvantages of various techniques for measuring the ratio of the gravitational mass to the inertial mass of anti-hydrogen are discussed. Theoretical considerations and numerical simulations indicate that stochasticity may be especially important for some experimental techniques in vertically oriented traps.

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  • Autoresonant-spectrometric determination of the residual gas composition in the ALPHA experiment apparatus

    Autoresonant-spectrometric determination of the residual gas composition in the ALPHA experiment apparatus

    Knowledge of the residual gas composition in the ALPHA experiment apparatus is important in our studies of antihydrogen and nonneutral plasmas. A technique based on autoresonant ion extraction from an electrostaticpotential well has been developed that enables the study of the vacuum in our trap. Computer simulations allow an interpretation of our measurements and provide

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  • Evaporative cooling of antiprotons for the production of trappable antihydrogen

    Evaporative cooling of antiprotons for the production of trappable antihydrogen

    We describe the implementation of evaporative cooling of charged particles in the ALPHA apparatus. Forced evaporation has been applied to cold samples of antiprotons held in Malmberg-Penning traps. Temperatures on the order of 10 K were obtained, while retaining a significant fraction of the initial number of particles. We have developed a model for the

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  • Electron plasmas as a diagnostic tool for hyperfine spectroscopy of antihydrogen

    Electron plasmas as a diagnostic tool for hyperfine spectroscopy of antihydrogen

    Long term magnetic confinement of antihydrogen atoms has recently been demonstrated by the ALPHA collaboration at CERN, opening the door to a range of experimental possibilities. Of particular interest is a measurement of the antihydrogen spectrum. A precise comparison of the spectrum of antihydrogen with that of hydrogen would be an excellent test of CPT

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