0000000000347467

AUTHOR

P. Veselý

showing 4 related works from this author

Solution of self-consistent equations for the N3LO nuclear energy density functional in spherical symmetry. The program hosphe (v1.02)

2010

Abstract We present solution of self-consistent equations for the N 3 LO nuclear energy density functional. We derive general expressions for the mean fields expressed as differential operators depending on densities and for the densities expressed in terms of derivatives of wave functions. These expressions are then specified to the case of spherical symmetry. We also present the computer program hosphe (v1.02), which solves the self-consistent equations by using the expansion of single-particle wave functions on the spherical harmonic oscillator basis. Program summary Program title: HOSPHE (v1.02) Catalogue identifier: AEGK_v1_0 Program summary URL: http://cpc.cs.qub.ac.uk/summaries/AEGK_…

PhysicsMathematical analysisGeneral Physics and AstronomySpherical harmonicsCPU timeDifferential operatorsymbols.namesakeHardware and ArchitectureQuantum electrodynamicsSelf-consistent mean fieldsymbolsNeutronCircular symmetryWave functionHamiltonian (quantum mechanics)Computer Physics Communications
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Finite-range separable pairing interaction within the new N3LO DFT approach

2011

For over four decades, the Skyrme functional within various parametrizations has been used to calculate nuclear properties. In the last few years there was a number of attempts to improve its performance and introduce generalized forms. In particular, the most general phenomenological quasi-local energy density functional, which contains all combinations of density, spin-density, and their derivatives up to the sixth order (N3LO), was proposed in [1]. Since in the phenomenological-functional approaches, the particle-particle (pp) channel is treated independently of the particle-hole (ph) channel, there remains a question of what pairing interaction is suitable to use within the N3LO energy …

HistoryCode (set theory)Energy density functionalFinite rangeComputer Science ApplicationsEducationSeparable spaceClassical mechanicsPairingStatistical physicsInvariant (mathematics)Energy functionalMathematicsCommunication channelJournal of Physics: Conference Series
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Linear response strength functions with iterative Arnoldi diagonalization

2009

We report on an implementation of a new method to calculate RPA strength functions with iterative non-hermitian Arnoldi diagonalization method, which does not explicitly calculate and store the RPA matrix. We discuss the treatment of spurious modes, numerical stability, and how the method scales as the used model space is enlarged. We perform the particle-hole RPA benchmark calculations for double magic nucleus 132Sn and compare the resulting electromagnetic strength functions against those obtained within the standard RPA.

PhysicsNuclear and High Energy PhysicsNuclear TheoryIterative methodNuclear TheoryFOS: Physical sciencesCalculation methodsNuclear Theory (nucl-th)Quantum mechanicsIsotopes of tinPhysics::Atomic and Molecular ClustersApplied mathematicsSpurious relationshipRandom phase approximationNuclear theoryNumerical stability
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Giant Monopole Resonances and nuclear incompressibilities studied for the zero-range and separable pairing interactions

2012

Background: Following the 2007 precise measurements of monopole strengths in tin isotopes, there has been a continuous theoretical effort to obtain a precise description of the experimental results. Up to now, there is no satisfactory explanation of why the tin nuclei appear to be significantly softer than 208Pb. Purpose: We determine the influence of finite-range and separable pairing interactions on monopole strength functions in semi-magic nuclei. Methods: We employ self-consistently the Quasiparticle Random Phase Approximation on top of spherical Hartree-Fock-Bogolyubov solutions. We use the Arnoldi method to solve the linear-response problem with pairing. Results: We found that the dif…

PhysicsNuclear and High Energy Physicsta114Nuclear Theory[PHYS.NUCL]Physics [physics]/Nuclear Theory [nucl-th]010308 nuclear & particles physicsMagnetic monopolechemistry.chemical_elementFOS: Physical sciencesNuclear matter01 natural sciencesSeparable spaceNuclear Theory (nucl-th)chemistryPairingQuantum mechanics0103 physical sciencesIsotopes of tinPhysical SciencesQuasiparticle010306 general physicsRandom phase approximationTin
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