0000000000563841

AUTHOR

Andrew M. Teale

0000-0001-9617-1143

showing 4 related works from this author

The Dalton quantum chemistry program system

2013

Dalton is a powerful general-purpose program system for the study of molecular electronic structure at the Hartree-Fock, Kohn-Sham, multiconfigurational self-consistent-field, MOller-Plesset, confi ...

Physics::Computational PhysicsPhysicsNuclear TheoryBiochemistryQuantum chemistryComputer Science ApplicationsComputational MathematicsComputational chemistryAb initio quantum chemistry methodsQuantum mechanicsMolecular electronic structurePhysics::Atomic and Molecular ClustersMaterials ChemistryPhysics::Atomic PhysicsPhysics::Chemical PhysicsPhysical and Theoretical ChemistryWiley Interdisciplinary Reviews: Computational Molecular Science
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Kohn–Sham energy decomposition for molecules in a magnetic field

2018

We study the total molecular electronic energy and its Kohn–Sham components within the framework of magnetic-field density-functional theory (BDFT), an alternative to current-dependent density-functional theory (CDFT) for molecules in the presence of magnetic fields. For a selection of closed-shell dia- and paramagnetic molecules, we investigate the dependence of the total electronic energy and its Kohn–Sham components on the magnetic field. Results obtained from commonly used density-functional approximations are compared with those obtained from Lieb optimizations based on magnetic-field dependent relaxed coupled-cluster singles-and-doubles (CCSD) and second-order Moller–Plesset (MP2) den…

PhysicsWork (thermodynamics)010304 chemical physicsComponent (thermodynamics)BiophysicsKohn–Sham equationsCondensed Matter Physics01 natural sciencesMagnetic fieldParamagnetismQuantum mechanics0103 physical sciencesPhysics::Atomic and Molecular ClustersDiamagnetismMoleculeDensity functional theoryPhysics::Chemical PhysicsPhysical and Theoretical Chemistry010306 general physicsMolecular BiologyMolecular Physics
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Erratum: “GW quasiparticle energies of atoms in strong magnetic fields” [J. Chem. Phys. 150, 214112 (2019)]

2019

PhysicsCondensed matter physicsQuasiparticleGeneral Physics and AstronomyPhysical and Theoretical ChemistryMagnetic fieldThe Journal of Chemical Physics
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GW quasiparticle energies of atoms in strong magnetic fields

2019

Quasiparticle energies of the atoms H–Ne have been computed in the GW approximation in the presence of strong magnetic fields with field strengths varying from 0 to 0.25 atomic units (0.25 B 0 =0.25 ℏe −1 a −2 0 ≈58 763 0.25 B0=0.25 ℏe−1a0−2≈58 763 T). The GW quasiparticle energies are compared with equation-of-motion ionization-potential (EOM-IP) coupled-cluster singles-and-doubles (CCSD) calculations of the first ionization energies. The best results are obtained with the evGW@PBE0 method, which agrees with the EOM-IP-CCSD model to within about 0.20 eV. Ionization potentials have been calculated for all atoms in the series, representing the first systematic study of ionization potentials …

PhysicsGW approximation010304 chemical physicsField (physics)General Physics and AstronomyField strengthElectron010402 general chemistry01 natural sciences7. Clean energy0104 chemical sciencesMagnetic fieldIonization0103 physical sciencesPhysics::Atomic and Molecular ClustersQuasiparticlePhysics::Atomic PhysicsPhysical and Theoretical ChemistryAtomic physicsIonization energyThe Journal of Chemical Physics
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