Deep-lying hole states in nuclei
The strength function for deep-lying hole states in a nucleus is examined from a many-body point of view. Due to their interaction with the compound state background, such single hole excitations are interpreted as quasihole states that are not eigenstates of the nuclear Hamiltonian. These stat...
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ndltd-netd.ac.za-oai-union.ndltd.org-wits-oai-wiredspace.wits.ac.za-10539-177782019-05-11T03:40:12Z Deep-lying hole states in nuclei Klevansky, Sandra Pamela The strength function for deep-lying hole states in a nucleus is examined from a many-body point of view. Due to their interaction with the compound state background, such single hole excitations are interpreted as quasihole states that are not eigenstates of the nuclear Hamiltonian. These states show up as giant resonances in the strength function, with position and width determined by the real and imaginary parts of the quasihole energy. A formal theory of the strength and fragmentation of such states is developed by splitting the self-energy into background and doorway state contributions. The theory is applied to the calculation of the strength function for the isotopes of Bn using doorway states of a collective nature that consist of a hole plus collective vibrations of the target nucleus. A microscopic description of both the collective excitations and the hole state that it dresses/ is given in terms of a modified Random Phase Approximation procedure that uses Green's functions for the individual single particle and single hole states that have been dressed by their interaction with the nuclear background. specific calculations for the isotope 115Sn, that are essentially free of adjustable parameters, shows excellent agreement with experiment. 2015-05-15T10:16:53Z 2015-05-15T10:16:53Z 2015-05-15 Thesis http://hdl.handle.net/10539/17778 en application/pdf application/pdf application/pdf |
collection |
NDLTD |
language |
en |
format |
Others
|
sources |
NDLTD |
description |
The strength function for deep-lying hole states in a
nucleus is examined from a many-body point of view.
Due to their interaction with the compound state background,
such single hole excitations are interpreted
as quasihole states that are not eigenstates of the
nuclear Hamiltonian. These states show up as giant
resonances in the strength function, with position and
width determined by the real and imaginary parts of the
quasihole energy. A formal theory of the strength and
fragmentation of such states is developed by splitting
the self-energy into background and doorway state contributions.
The theory is applied to the calculation
of the strength function for the isotopes of Bn using
doorway states of a collective nature that consist of
a hole plus collective vibrations of the target nucleus.
A microscopic description of both the collective
excitations and the hole state that it dresses/ is
given in terms of a modified Random Phase Approximation
procedure that uses Green's functions for the individual
single particle and single hole states that have
been dressed by their interaction with the nuclear
background. specific calculations for the isotope
115Sn, that are essentially free of adjustable parameters,
shows excellent agreement with experiment. |
author |
Klevansky, Sandra Pamela |
spellingShingle |
Klevansky, Sandra Pamela Deep-lying hole states in nuclei |
author_facet |
Klevansky, Sandra Pamela |
author_sort |
Klevansky, Sandra Pamela |
title |
Deep-lying hole states in nuclei |
title_short |
Deep-lying hole states in nuclei |
title_full |
Deep-lying hole states in nuclei |
title_fullStr |
Deep-lying hole states in nuclei |
title_full_unstemmed |
Deep-lying hole states in nuclei |
title_sort |
deep-lying hole states in nuclei |
publishDate |
2015 |
url |
http://hdl.handle.net/10539/17778 |
work_keys_str_mv |
AT klevanskysandrapamela deeplyingholestatesinnuclei |
_version_ |
1719081455218327552 |