Precision spectroscopic comparison of hydrogen and antihydrogen holds the promise of a sensitive test of the Charge-Parity-Time theorem and matter-antimatter equivalence. The clearest path towards realising this goal is to hold a sample of antihydrogen in an atomic trap for interrogation by electromagnetic radiation. Achieving this poses a huge experimental challenge, as state-of-the-art magnetic-minimum atom traps have well depths of only ∼1 T (∼0.5 K for ground state antihydrogen atoms). The atoms annihilate on contact with matter and must be ‘born’ inside the magnetic trap with low kinetic energies. At the ALPHA experiment, antihydrogen atoms are produced from antiprotons and positrons stored in the form of non-neutral plasmas, where the...
Antihydrogen, a positron bound to an antiproton, is the simplest anti-atom. Its structure and proper...
Antihydrogen, a positron bound to an antiproton, is the simplest anti-atom. Its structure and proper...
Atoms made of a particle and an antiparticle are unstable, usually surviving less than a microsecond...
Precision spectroscopic comparison of hydrogen and antihydrogen holds the promise of a sensitive tes...
Precision spectroscopic comparison of hydrogen and antihydrogen holds the promise of a sensitive tes...
Precision spectroscopic comparison of hydrogen and antihydrogen holds the promise of a sensitive tes...
Precision spectroscopic comparison of hydrogen and antihydrogen holds the promise of a sensitive tes...
Antihydrogen, the simplest pure-antimatter atomic system, holds the promise of direct tests of matte...
Antimatter was first predicted in 1931, by Dirac. Work with highenergy antiparticles is now commonpl...
Antihydrogen, the bound state of an antiproton and a positron, has been produced at low energies at ...
The asymmetry between matter and antimatter in the universe and the incompatibility be- tween the St...
Abstract: Antihydrogen spectroscopy promises precise tests of the symmetry of matter and antimatter,...
Atoms made of a particle and an antiparticle are unstable, usually surviving less than a microsecond...
Antihydrogen, a positron bound to an antiproton, is the simplest anti-atom. Its structure and proper...
AbstractWe present the results of an experiment to search for trapped antihydrogen atoms with the AL...
Antihydrogen, a positron bound to an antiproton, is the simplest anti-atom. Its structure and proper...
Antihydrogen, a positron bound to an antiproton, is the simplest anti-atom. Its structure and proper...
Atoms made of a particle and an antiparticle are unstable, usually surviving less than a microsecond...
Precision spectroscopic comparison of hydrogen and antihydrogen holds the promise of a sensitive tes...
Precision spectroscopic comparison of hydrogen and antihydrogen holds the promise of a sensitive tes...
Precision spectroscopic comparison of hydrogen and antihydrogen holds the promise of a sensitive tes...
Precision spectroscopic comparison of hydrogen and antihydrogen holds the promise of a sensitive tes...
Antihydrogen, the simplest pure-antimatter atomic system, holds the promise of direct tests of matte...
Antimatter was first predicted in 1931, by Dirac. Work with highenergy antiparticles is now commonpl...
Antihydrogen, the bound state of an antiproton and a positron, has been produced at low energies at ...
The asymmetry between matter and antimatter in the universe and the incompatibility be- tween the St...
Abstract: Antihydrogen spectroscopy promises precise tests of the symmetry of matter and antimatter,...
Atoms made of a particle and an antiparticle are unstable, usually surviving less than a microsecond...
Antihydrogen, a positron bound to an antiproton, is the simplest anti-atom. Its structure and proper...
AbstractWe present the results of an experiment to search for trapped antihydrogen atoms with the AL...
Antihydrogen, a positron bound to an antiproton, is the simplest anti-atom. Its structure and proper...
Antihydrogen, a positron bound to an antiproton, is the simplest anti-atom. Its structure and proper...
Atoms made of a particle and an antiparticle are unstable, usually surviving less than a microsecond...