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  • Sympathetic cooling of posi...
    Baker, C J; Bertsche, W; Capra, A; Cesar, C L; Charlton, M; Mathad, A Cridland; Eriksson, S; Evans, A; Evetts, N; Fabbri, S; Fajans, J; Friesen, T; Fujiwara, M C; Grandemange, P; Granum, P; Hangst, J S; Hayden, M E; Hodgkinson, D; Isaac, C A; Johnson, M A; Jones, J M; Jones, S A; Jonsell, S; Kurchaninov, L; Madsen, N; Maxwell, D; McKenna, J T K; Menary, S; Momose, T; Mullan, P; Olchanski, K; Olin, A; Peszka, J; Powell, A; Pusa, P; Rasmussen, C Ø; Robicheaux, F; Sacramento, R L; Sameed, M; Sarid, E; Silveira, D M; Stutter, G; So, C; Tharp, T D; Thompson, R I; van der Werf, D P; Wurtele, J S

    Nature communications, 10/2021, Letnik: 12, Številka: 1
    Journal Article

    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 for testing fundamental symmetries with high precision. Here, we report on the use of laser cooled Be ions to sympathetically cool a large and dense plasma of positrons to directly measured temperatures below 7 K in a Penning trap for antihydrogen synthesis. This will likely herald a significant increase in the amount of antihydrogen available for experimentation, thus facilitating further improvements in studies of fundamental symmetries.