Cargando…

Nuclear Structure Calculations with Coupled Cluster Methods from Quantum Chemistry

We present several coupled-cluster calculations of ground and excited states of 4He and 16O employing methods from quantum chemistry. A comparison of coupled cluster results with the results of exact diagonalization of the hamiltonian in the same model space and other truncated shell-model calculati...

Descripción completa

Detalles Bibliográficos
Autores principales: Dean, D.J., Gour, J.R., Hagen, G., Hjorth-Jensen, M., Kowalski, K., Papenbrock, T., Piecuch, P., Wloch, M.
Lenguaje:eng
Publicado: 2004
Materias:
Acceso en línea:https://dx.doi.org/10.1016/j.nuclphysa.2005.02.041
http://cds.cern.ch/record/795513
_version_ 1780904651475910656
author Dean, D.J.
Gour, J.R.
Hagen, G.
Hjorth-Jensen, M.
Kowalski, K.
Papenbrock, T.
Piecuch, P.
Wloch, M.
author_facet Dean, D.J.
Gour, J.R.
Hagen, G.
Hjorth-Jensen, M.
Kowalski, K.
Papenbrock, T.
Piecuch, P.
Wloch, M.
author_sort Dean, D.J.
collection CERN
description We present several coupled-cluster calculations of ground and excited states of 4He and 16O employing methods from quantum chemistry. A comparison of coupled cluster results with the results of exact diagonalization of the hamiltonian in the same model space and other truncated shell-model calculations shows that the quantum chemistry inspired coupled cluster approximations provide an excellent description of ground and excited states of nuclei, with much less computational effort than traditional large-scale shell-model approaches. Unless truncations are made, for nuclei like 16O, full-fledged shell-model calculations with four or more major shells are not possible. However, these and even larger systems can be studied with the coupled cluster methods due to the polynomial rather than factorial scaling inherent in standard shell-model studies. This makes the coupled cluster approaches, developed in quantum chemistry, viable methods for describing weakly bound systems of interest for future nuclear facilities.
id cern-795513
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2004
record_format invenio
spelling cern-7955132023-09-27T07:58:48Zdoi:10.1016/j.nuclphysa.2005.02.041http://cds.cern.ch/record/795513engDean, D.J.Gour, J.R.Hagen, G.Hjorth-Jensen, M.Kowalski, K.Papenbrock, T.Piecuch, P.Wloch, M.Nuclear Structure Calculations with Coupled Cluster Methods from Quantum ChemistryNuclear PhysicsWe present several coupled-cluster calculations of ground and excited states of 4He and 16O employing methods from quantum chemistry. A comparison of coupled cluster results with the results of exact diagonalization of the hamiltonian in the same model space and other truncated shell-model calculations shows that the quantum chemistry inspired coupled cluster approximations provide an excellent description of ground and excited states of nuclei, with much less computational effort than traditional large-scale shell-model approaches. Unless truncations are made, for nuclei like 16O, full-fledged shell-model calculations with four or more major shells are not possible. However, these and even larger systems can be studied with the coupled cluster methods due to the polynomial rather than factorial scaling inherent in standard shell-model studies. This makes the coupled cluster approaches, developed in quantum chemistry, viable methods for describing weakly bound systems of interest for future nuclear facilities.We present several coupled-cluster calculations of ground and excited states of 4He and 16O employing methods from quantum chemistry. A comparison of coupled cluster results with the results of exact diagonalization of the hamiltonian in the same model space and other truncated shell-model calculations shows that the quantum chemistry inspired coupled cluster approximations provide an excellent description of ground and excited states of nuclei, with much less computational effort than traditional large-scale shell-model approaches. Unless truncations are made, for nuclei like 16O, full-fledged shell-model calculations with four or more major shells are not possible. However, these and even larger systems can be studied with the coupled cluster methods due to the polynomial rather than factorial scaling inherent in standard shell-model studies. This makes the coupled cluster approaches, developed in quantum chemistry, viable methods for describing weakly bound systems of interest for future nuclear facilities.We present several coupled-cluster calculations of ground and excited states of 4He and 16O employing methods from quantum chemistry. A comparison of coupled cluster results with the results of exact diagonalization of the hamiltonian in the same model space and other truncated shell-model calculations shows that the quantum chemistry inspired coupled cluster approximations provide an excellent description of ground and excited states of nuclei, with much less computational effort than traditional large-scale shell-model approaches. Unless truncations are made, for nuclei like 16O, full-fledged shell-model calculations with four or more major shells are not possible. However, these and even larger systems can be studied with the coupled cluster methods due to the polynomial rather than factorial scaling inherent in standard shell-model studies. This makes the coupled cluster approaches, developed in quantum chemistry, viable methods for describing weakly bound systems of interest for future nuclear facilities.We present several coupled-cluster calculations of ground and excited states of 4He and 16O employing methods from quantum chemistry. A comparison of coupled cluster results with the results of exact diagonalization of the hamiltonian in the same model space and other truncated shell-model calculations shows that the quantum chemistry inspired coupled cluster approximations provide an excellent description of ground and excited states of nuclei, with much less computational effort than traditional large-scale shell-model approaches. Unless truncations are made, for nuclei like 16O, full-fledged shell-model calculations with four or more major shells are not possible. However, these and even larger systems can be studied with the coupled cluster methods due to the polynomial rather than factorial scaling inherent in standard shell-model studies. This makes the coupled cluster approaches, developed in quantum chemistry, viable methods for describing weakly bound systems of interest for future nuclear facilities.We present several coupled-cluster calculations of ground and excited states of 4He and 16O employing methods from quantum chemistry. A comparison of coupled cluster results with the results of exact diagonalization of the hamiltonian in the same model space and other truncated shell-model calculations shows that the quantum chemistry inspired coupled cluster approximations provide an excellent description of ground and excited states of nuclei, with much less computational effort than traditional large-scale shell-model approaches. Unless truncations are made, for nuclei like 16O, full-fledged shell-model calculations with four or more major shells are not possible. However, these and even larger systems can be studied with the coupled cluster methods due to the polynomial rather than factorial scaling inherent in standard shell-model studies. This makes the coupled cluster approaches, developed in quantum chemistry, viable methods for describing weakly bound systems of interest for future nuclear facilities.We present several coupled-cluster calculations of ground and excited states of 4He and 16O employing methods from quantum chemistry. A comparison of coupled cluster results with the results of exact diagonalization of the hamiltonian in the same model space and other truncated shell-model calculations shows that the quantum chemistry inspired coupled cluster approximations provide an excellent description of ground and excited states of nuclei, with much less computational effort than traditional large-scale shell-model approaches. Unless truncations are made, for nuclei like 16O, full-fledged shell-model calculations with four or more major shells are not possible. However, these and even larger systems can be studied with the coupled cluster methods due to the polynomial rather than factorial scaling inherent in standard shell-model studies. This makes the coupled cluster approaches, developed in quantum chemistry, viable methods for describing weakly bound systems of interest for future nuclear facilities.We present several coupled-cluster calculations of ground and excited states of 4 He and 16 O employing methods from quantum chemistry. A comparison of coupled cluster results with the results of exact diagonalization of the hamiltonian in the same model space and other truncated shell-model calculations shows that the quantum chemistry inspired coupled cluster approximations provide an excellent description of ground and excited states of nuclei, with much less computational effort than traditional large-scale shell-model approaches. Unless truncations are made, for nuclei like 16 O, full-fledged shell-model calculations with four or more major shells are not possible. However, these and even larger systems can be studied with the coupled cluster methods due to the polynomial rather than factorial scaling inherent in standard shell-model studies. This makes the coupled cluster approaches, developed in quantum chemistry, viable methods for describing weakly bound systems of interest for future nuclear facilities.nucl-th/0409062oai:cds.cern.ch:7955132004-09-27
spellingShingle Nuclear Physics
Dean, D.J.
Gour, J.R.
Hagen, G.
Hjorth-Jensen, M.
Kowalski, K.
Papenbrock, T.
Piecuch, P.
Wloch, M.
Nuclear Structure Calculations with Coupled Cluster Methods from Quantum Chemistry
title Nuclear Structure Calculations with Coupled Cluster Methods from Quantum Chemistry
title_full Nuclear Structure Calculations with Coupled Cluster Methods from Quantum Chemistry
title_fullStr Nuclear Structure Calculations with Coupled Cluster Methods from Quantum Chemistry
title_full_unstemmed Nuclear Structure Calculations with Coupled Cluster Methods from Quantum Chemistry
title_short Nuclear Structure Calculations with Coupled Cluster Methods from Quantum Chemistry
title_sort nuclear structure calculations with coupled cluster methods from quantum chemistry
topic Nuclear Physics
url https://dx.doi.org/10.1016/j.nuclphysa.2005.02.041
http://cds.cern.ch/record/795513
work_keys_str_mv AT deandj nuclearstructurecalculationswithcoupledclustermethodsfromquantumchemistry
AT gourjr nuclearstructurecalculationswithcoupledclustermethodsfromquantumchemistry
AT hageng nuclearstructurecalculationswithcoupledclustermethodsfromquantumchemistry
AT hjorthjensenm nuclearstructurecalculationswithcoupledclustermethodsfromquantumchemistry
AT kowalskik nuclearstructurecalculationswithcoupledclustermethodsfromquantumchemistry
AT papenbrockt nuclearstructurecalculationswithcoupledclustermethodsfromquantumchemistry
AT piecuchp nuclearstructurecalculationswithcoupledclustermethodsfromquantumchemistry
AT wlochm nuclearstructurecalculationswithcoupledclustermethodsfromquantumchemistry