\/svg>","ionicons-filled--link":"<\/svg>"}) Accessibility Tools Invert colors Monochrome Dark contrast Light contrast Low saturation High saturation Highlight links Highlight headings Screen reader Read mode Content scaling 100% Font size 100% Line height 100% Letter spacing 100% Skip to main content PL The Institute The Institute General information Emploees News Scientific News Gender equality plan Address and contact data Research Research profile List of publications Information in BIP Scientific Council Organizational structure GDPR Events Seminars Current seminars List of seminars Conferences Current conferences Past conferences For students Doctoral school General Information Curriculum Recruitment School Council Doctoral Student Council Teaching Doctoral students Mid-term evaluation For students Master theses Student training Visiting the Institute For employees Institute e-mail Eduroam Publication registry Contact us Address and contact data Important phone numbers and emails PL The Institute The Institute General information Emploees News Scientific News Gender equality plan Address and contact data Research Research profile List of publications Information in BIP Scientific Council Organizational structure GDPR Events Seminars Current seminars List of seminars Conferences Current conferences Past conferences For students Doctoral school General Information Curriculum Recruitment School Council Doctoral Student Council Teaching Doctoral students Mid-term evaluation For students Master theses Student training Visiting the Institute For employees Institute e-mail Eduroam Publication registry Contact us Address and contact data Important phone numbers and emails Events Home Events List of seminars Seminar of the Institute of Theoretical Physics of University of Wrocław 12:15, 15-06-12 UWr, pl. Maksa Borna 9, sala 422 Symmetry Energy: from Nuclei to Neutron StarsPawel DanielewiczMichigan State University, East Lansing, USASymmetry energy quantifies the changes in nuclear energy when isospin grows away from zero, at finite baryon number. Knowledge of the symmetry energy is critical when extrapolating from nuclei to neutron stars. Charge invariance of nuclear interactions implies that the dependence of energy on isospin is primarily quadratic. Relying on the charge invariance, we examine nuclear excitation energies to the isobaric analog states of ground states of other nuclei in the same isobaric chain. In this fashion we are able to extract symmetry-energy coefficients on a nucleus-by-nucleus basis. The coefficients turn out to have a strong mass dependence that can be tied to different contributions from different densities in nuclei with different mass. In consequence, we are able to deduce constraints on the symmetry energy in nuclear matter, as a function of density. Those constraints are narrow at subnormal densities, but spread out at normal density and above. Plans to constraint the symmetry energy at supranormal densities, using charged pion yields are discussed.
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Symmetry energy quantifies the changes in nuclear energy when isospin grows away from zero, at finite baryon number. Knowledge of the symmetry energy is critical when extrapolating from nuclei to neutron stars. Charge invariance of nuclear interactions implies that the dependence of energy on isospin is primarily quadratic. Relying on the charge invariance, we examine nuclear excitation energies to the isobaric analog states of ground states of other nuclei in the same isobaric chain. In this fashion we are able to extract symmetry-energy coefficients on a nucleus-by-nucleus basis. The coefficients turn out to have a strong mass dependence that can be tied to different contributions from different densities in nuclei with different mass. In consequence, we are able to deduce constraints on the symmetry energy in nuclear matter, as a function of density. Those constraints are narrow at subnormal densities, but spread out at normal density and above. Plans to constraint the symmetry energy at supranormal densities, using charged pion yields are discussed.