Temperature-dependent symmetry energy of neutron-rich thermally fissile nuclei

Background: The density-dependent symmetry energy coefficient plays a crucial role in understanding a variety of issues in nuclear physics as well as nuclear astrophysics. It is quite interesting and crucial to determine the symmetry energy coefficient and its related observables for neutron-rich th...

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Main Authors: Quddus, Abdul, Bhuyan, Mrutunjaya, Ahmad, Shakeb, Carlson, B.V., Patra, S.K.
Format: Article
Published: American Physical Society 2019
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Online Access:http://eprints.um.edu.my/23722/
https://doi.org/10.1103/PhysRevC.99.044314
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spelling my.um.eprints.237222020-02-10T08:03:35Z http://eprints.um.edu.my/23722/ Temperature-dependent symmetry energy of neutron-rich thermally fissile nuclei Quddus, Abdul Bhuyan, Mrutunjaya Ahmad, Shakeb Carlson, B.V. Patra, S.K. Q Science (General) QC Physics Background: The density-dependent symmetry energy coefficient plays a crucial role in understanding a variety of issues in nuclear physics as well as nuclear astrophysics. It is quite interesting and crucial to determine the symmetry energy coefficient and its related observables for neutron-rich thermally fissile nuclei at finite temperature. Purpose: We evaluate the symmetry energy coefficient, neutron pressure, and symmetry energy curvature of a finite nucleus from the corresponding quantities of infinite nuclear matter. Moreover, we correlate an effective symmetry energy coefficient and its related observables with the neutron skin thickness of neutron-rich thermally fissile nuclei at a finite temperature. Methods: The temperature-dependent relativistic mean field model (TRMF) is used to obtain the ground and excited state bulk properties of finite nuclei and the energy density, pressure, and the symmetry energy for infinite nuclear matter. The TRMF model with FSUGarnet, IOPB-I, and NL3 parameter sets is used for the present analysis. The effective nuclear matter properties are used to estimate the corresponding quantities of finite nuclei by using the local density approximation. Results: Nuclear bulk properties such as binding energy, quadrupole deformation, root-mean-square charge radius of the nuclei, and the equation of state and symmetry energy for infinite symmetric nuclear matter are estimated within the TRMF model. The nuclear matter observables at the local density of the nuclei serve as an input to obtain the effective symmetry energy coefficient, neutron pressure, and the symmetry energy curvature of U234,236,250 and Pu240 nuclei. The influence of temperature and density on these properties for neutron-rich thermally fissile nuclei is observed. A correlation is established between the neutron skin thickness and the neutron pressure of the nuclei. Conclusions: The studied properties of nuclei such as effective symmetry energy coefficient, neutron pressure and symmetry energy curvature can be used in the synthesis of neutron-rich thermally fissile nuclei. The method presented here (fully microscopic) can be used further to study the properties of exotic and superheavy nuclei from the corresponding quantities of nuclear matter and vice versa. © 2019 American Physical Society. American Physical Society 2019 Article PeerReviewed Quddus, Abdul and Bhuyan, Mrutunjaya and Ahmad, Shakeb and Carlson, B.V. and Patra, S.K. (2019) Temperature-dependent symmetry energy of neutron-rich thermally fissile nuclei. Physical Review C, 99 (4). 044314. ISSN 2469-9985 https://doi.org/10.1103/PhysRevC.99.044314 doi:10.1103/PhysRevC.99.044314
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic Q Science (General)
QC Physics
spellingShingle Q Science (General)
QC Physics
Quddus, Abdul
Bhuyan, Mrutunjaya
Ahmad, Shakeb
Carlson, B.V.
Patra, S.K.
Temperature-dependent symmetry energy of neutron-rich thermally fissile nuclei
description Background: The density-dependent symmetry energy coefficient plays a crucial role in understanding a variety of issues in nuclear physics as well as nuclear astrophysics. It is quite interesting and crucial to determine the symmetry energy coefficient and its related observables for neutron-rich thermally fissile nuclei at finite temperature. Purpose: We evaluate the symmetry energy coefficient, neutron pressure, and symmetry energy curvature of a finite nucleus from the corresponding quantities of infinite nuclear matter. Moreover, we correlate an effective symmetry energy coefficient and its related observables with the neutron skin thickness of neutron-rich thermally fissile nuclei at a finite temperature. Methods: The temperature-dependent relativistic mean field model (TRMF) is used to obtain the ground and excited state bulk properties of finite nuclei and the energy density, pressure, and the symmetry energy for infinite nuclear matter. The TRMF model with FSUGarnet, IOPB-I, and NL3 parameter sets is used for the present analysis. The effective nuclear matter properties are used to estimate the corresponding quantities of finite nuclei by using the local density approximation. Results: Nuclear bulk properties such as binding energy, quadrupole deformation, root-mean-square charge radius of the nuclei, and the equation of state and symmetry energy for infinite symmetric nuclear matter are estimated within the TRMF model. The nuclear matter observables at the local density of the nuclei serve as an input to obtain the effective symmetry energy coefficient, neutron pressure, and the symmetry energy curvature of U234,236,250 and Pu240 nuclei. The influence of temperature and density on these properties for neutron-rich thermally fissile nuclei is observed. A correlation is established between the neutron skin thickness and the neutron pressure of the nuclei. Conclusions: The studied properties of nuclei such as effective symmetry energy coefficient, neutron pressure and symmetry energy curvature can be used in the synthesis of neutron-rich thermally fissile nuclei. The method presented here (fully microscopic) can be used further to study the properties of exotic and superheavy nuclei from the corresponding quantities of nuclear matter and vice versa. © 2019 American Physical Society.
format Article
author Quddus, Abdul
Bhuyan, Mrutunjaya
Ahmad, Shakeb
Carlson, B.V.
Patra, S.K.
author_facet Quddus, Abdul
Bhuyan, Mrutunjaya
Ahmad, Shakeb
Carlson, B.V.
Patra, S.K.
author_sort Quddus, Abdul
title Temperature-dependent symmetry energy of neutron-rich thermally fissile nuclei
title_short Temperature-dependent symmetry energy of neutron-rich thermally fissile nuclei
title_full Temperature-dependent symmetry energy of neutron-rich thermally fissile nuclei
title_fullStr Temperature-dependent symmetry energy of neutron-rich thermally fissile nuclei
title_full_unstemmed Temperature-dependent symmetry energy of neutron-rich thermally fissile nuclei
title_sort temperature-dependent symmetry energy of neutron-rich thermally fissile nuclei
publisher American Physical Society
publishDate 2019
url http://eprints.um.edu.my/23722/
https://doi.org/10.1103/PhysRevC.99.044314
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score 13.211869