Literature DB >> 32238942

Mirror-symmetry violation in bound nuclear ground states.

D E M Hoff1, A M Rogers2, S M Wang3, P C Bender4, K Brandenburg5, K Childers3,6, J A Clark7, A C Dombos3,8,9, E R Doucet4, S Jin3,9, R Lewis3,6, S N Liddick3,6, C J Lister4, Z Meisel5, C Morse4,10, W Nazarewicz8,11, H Schatz3,8,9, K Schmidt3,9,12, D Soltesz5, S K Subedi5, S Waniganeththi4.   

Abstract

Conservation laws are deeply related to any symmetry present in a physical system1,2. Analogously to electrons in atoms exhibiting spin symmetries3, it is possible to consider neutrons and protons in the atomic nucleus as projections of a single fermion with an isobaric spin (isospin) of t = 1/2 (ref. 4). Every nuclear state is thus characterized by a total isobaric spin T and a projection Tz-two quantities that are largely conserved in nuclear reactions and decays5,6. A mirror symmetry emerges from this isobaric-spin formalism: nuclei with exchanged numbers of neutrons and protons, known as mirror nuclei, should have an identical set of states7, including their ground state, labelled by their total angular momentum J and parity π. Here we report evidence of mirror-symmetry violation in bound nuclear ground states within the mirror partners strontium-73 and bromine-73. We find that a J π = 5/2- spin assignment is needed to explain the proton-emission pattern observed from the T = 3/2 isobaric-analogue state in rubidium-73, which is identical to the ground state of strontium-73. Therefore the ground state of strontium-73 must differ from its J π = 1/2- mirror bromine-73. This observation offers insights into charge-symmetry-breaking forces acting in atomic nuclei.

Entities:  

Year:  2020        PMID: 32238942     DOI: 10.1038/s41586-020-2123-1

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  1 in total

1.  Ab initio calculation of the neutron-proton mass difference.

Authors:  Sz Borsanyi; S Durr; Z Fodor; C Hoelbling; S D Katz; S Krieg; L Lellouch; T Lippert; A Portelli; K K Szabo; B C Toth
Journal:  Science       Date:  2015-03-27       Impact factor: 47.728

  1 in total

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