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RESEARCH PRODUCT
Many-body Green's function theory for electron-phonon interactions: ground state properties of the Holstein dimer
R. Van LeeuwenNiko SäkkinenHeiko AppelYang Pengsubject
ground state propertiesGeneral Physics and AstronomyFOS: Physical sciences02 engineering and technology53001 natural sciencesCondensed Matter - Strongly Correlated Electronssymbols.namesakeQuantum mechanics0103 physical sciencesSymmetry breakingPhysical and Theoretical ChemistryBorn approximationPerturbation theory010306 general physicsPhysicsBipolaronta114Strongly Correlated Electrons (cond-mat.str-el)many-body perturbation theoryHartree540021001 nanoscience & nanotechnologySymmetry (physics)3. Good healthGreen's functionelectron-phonon interactionsymbols0210 nano-technologyGround statedescription
We study ground-state properties of a two-site, two-electron Holstein model describing two molecules coupled indirectly via electron-phonon interaction by using both exact diagonalization and self-consistent diagrammatic many-body perturbation theory. The Hartree and self-consistent Born approximations used in the present work are studied at different levels of self-consistency. The governing equations are shown to exhibit multiple solutions when the electron-phonon interaction is sufficiently strong whereas at smaller interactions only a single solution is found. The additional solutions at larger electron-phonon couplings correspond to symmetry-broken states with inhomogeneous electron densities. A comparison to exact results indicates that this symmetry breaking is strongly correlated with the formation of a bipolaron state in which the two electrons prefer to reside on the same molecule. The results further show that the Hartree and partially self-consistent Born solutions obtained by enforcing symmetry do not compare well with exact energetics, while the fully self-consistent Born approximation improves the qualitative and quantitative agreement with exact results in the same symmetric case. This together with a presented natural occupation number analysis supports the conclusion that the fully self-consistent approximation describes partially the bipolaron crossover. These results contribute to better understanding how these approximations cope with the strong localizing effect of the electron-phonon interaction.
year | journal | country | edition | language |
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2015-12-21 |