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NSR database version of May 1, 2024.

Search: Author = A.R.Samana

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2023DO10      Eur.Phys.J. A 59, 260 (2023)

M.dos Santos, A.R.Samana, S.B.Duarte, C.A.Barbero

Neutral-current neutrino-nucleus scattering within QRPA models

doi: 10.1140/epja/s10050-023-01171-9
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2023MO06      Eur.Phys.J. A 59, 31 (2023)

M.Mohammadzadeh, H.Khalili, A.R.Samana, M.dos Santos, C.A.Barbero, S.B.Duarte

Neutrino and Antineutrino captures on 18O within QRPA models

NUCLEAR REACTIONS 18O(ν, e-), (ν, e+), E<14 MeV; calculated σ within the Quasiparticle Random Phase Approximation (QRPA) and Projected QRPA (PQRPA) models. Comparison with available data.

doi: 10.1140/epja/s10050-023-00944-6
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2020FE03      Phys.Rev. C 101, 044314 (2020)

V.dosS.Ferreira, A.R.Samana, F.Krmpotic, M.Chiapparini

Nuclear structure model for double-charge-exchange processes

RADIOACTIVITY 48Ca(2β-); 96Ru(2EC); calculated neutron and proton mean field single-particle energies, nuclear matrix elements (NMEs), half-lives and Q-values for two-neutrino double-beta decay mode, Fermi and Gamow-Teller double-charge exchange (DCE) transition strength distributions using a nuclear structure model involving (pn, 2p2n)-QTDA excitations on the BCS mean field. 48Ca, 48Ti, 96Ru, 96Mo; calculated levels, J, π. Comparison with available experimental values.

doi: 10.1103/PhysRevC.101.044314
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2018PO11      Braz.J.Phys. 48, 485 (2018)

D.N.Possidonio, R.C.Ferreira, A.J.Dimarco, C.A.Barbero, A.R.Samana, M.R.Azevedo, C.L.Santana, A.E.Mariano

Influence of the Axial-Vector Coupling Constant and the Energy Distribution Function on β-Decay Rates Within the Gross Theory of Beta Decay

doi: 10.1007/s13538-018-0564-x
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2017DO11      Phys.Rev. C 96, 044322 (2017)

V.dos Santos Ferreira, F.Krmpotic, C.A.Barbero, A.R.Samana

Partial restoration of spin-isospin SU(4) symmetry and the one-quasiparticle random-phase approximation method in double-β decay

RADIOACTIVITY 48Ca, 76Ge, 82Se, 96Zr, 100Mo, 128,130Te, 150Nd(2β-); calculated matrix elements and half-lives for 2νββ and 0νββ decay modes. Comparison with available experimental data, and other theoretical calculations. Proton-neutron quasiparticle random-phase approximation (pn-QRPA) calculations, within the framework of partial restoration of SU(4) symmetry.

doi: 10.1103/PhysRevC.96.044322
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2017VA26      Phys.Rev. C 96, 054606 (2017)

D.Vargas, A.R.Samana, F.G.Velasco, O.R.Hoyos, F.Guzman, J.L.Bernal-Castillo, E.Andrade II, R.Perez, A.Deppman, C.A.Barbero, A.E.Mariano

Nuclear medium effects in muonic neutrino interactions with energies from 0.2 to 1.5 GeV

NUCLEAR REACTIONS 2H, 12C, 16O, 27Al, 40Ar, 56Fe, 208Pb(ν, X), E=0.2-1.5 GeV; calculated σ(E) data, energy distributions for π+ and μ- spectra in the framework of Monte Carlo calculation in the intranuclear cascade model. Comparison with experimental data.

doi: 10.1103/PhysRevC.96.054606
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2011SA04      Phys.Rev. C 83, 024303 (2011)

A.R.Samana, F.Krmpotic, N.Paar, C.A.Bertulani

Neutrino and antineutrino charge-exchange reactions on 12C

NUCLEAR STRUCTURE 12B, 12N; calculated ground state energies, GT-B values, weak-interaction properties of ground states. QRPA and Projected quasiparticle random phase approximation (QRPA).

NUCLEAR REACTIONS 12C(ν, e-)12N, E=0-600 MeV; 12C(ν-bar, e+)12B, E=0-600 MeV; calculated exclusive and inclusive cross sections, sum rule, muon capture transition rates. Astrophysical significance to supernova neutrino spectra. QRPA and PQRPA models. Comparison with experimental data.

doi: 10.1103/PhysRevC.83.024303
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2008SA33      Phys.Rev. C 78, 024312 (2008)

A.R.Samana, C.A.Bertulani

Detection of supernova neutrinos with neutrino-iron scattering

NUCLEAR REACTIONS 56Fe(ν, e-)56Co; calculated σ. Projected quasiparticle random phase approximation.

doi: 10.1103/PhysRevC.78.024312
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2007SA50      Nucl.Phys. A791, 36 (2007)

A.R.Samana, T.Tarutina, F.Krmpotic, M.S.Hussein, T.T.S.Kuo

Pairing correlations in odd-mass carbon isotopes and effect of Pauli principle in particle-core coupling in 13C and 11Be

NUCLEAR STRUCTURE 11Be, 13,15,17,19C; calculated level energies, J, π, and deformation parameters using one-quasiparticle PBCS model.

doi: 10.1016/j.nuclphysa.2007.03.115
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2006TA28      Braz.J.Phys. 36, 1349 (2006)

T.Tarutina, A.R.Samana, F.Krmpotic, M.S.Hussein

Quasiparticle-Rotor Model Description of Carbon Isotopes

NUCLEAR STRUCTURE 12,13,14,15,16,17,18,19C;calculated level energies, J, π, configurations, deformation using quasiparticle-rotor coupling model withing the usual BCS and projected BCS.

doi: 10.1590/S0103-97332006000800003
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