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Antinuclei in Heavy-Ion Collisions

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arxiv 1808.09619 v1 pith:752E4DKO submitted 2018-08-29 nucl-ex hep-phnucl-th

classification nucl-exhep-phnucl-th
keywords antinucleiantiprotonsbrookhavencerncollidercollisionscosmic-raydevelopment
verification ladder T0 review T1 audit T2 compute T3 formal
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We review progress in the study of antinuclei, starting from Dirac's equation and the discovery of the positron in cosmic-ray events. The development of proton accelerators led to the discovery of antiprotons, followed by the first antideuterons, demonstrating that antinucleons bind into antinuclei. With the development of heavy-ion programs at the Brookhaven AGS and CERN SPS, it was demonstrated that central collisions of heavy nuclei offer a fertile ground for research and discoveries in the area of antinuclei. In this review, we emphasize recent observations at Brookhaven's Relativistic Heavy Ion Collider and at CERN's Large Hadron Collider, namely, the antihypertriton and the antihelium-4, as well as measurements of the mass difference between light nuclei and antinuclei, and the interaction between antiprotons. Physics implications of the new observations and different production mechanisms are discussed. We also consider implications for related fields, such as hypernuclear physics and space-based cosmic-ray experiments.

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    nucl-th 2025-08 unverdicted novelty 6.0 of 10

    Neural-network quantum states with new spin and isospin treatments compute light hypernuclei spectra at claimed high accuracy and benchmark pionless effective field theory Hamiltonians.

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