Koopmans-compliant Spectral Functionals for Extended Systems
ORAL
Abstract
Koopmans-compliant functionals have been shown to provide accurate spectral properties for molecular systems; this accuracy is driven by the generalized linearization condition imposed on each charged excitation - i.e. on changing the occupation of any orbital in the system, while accounting for screening and relaxation from all other electrons. Here, we discuss the theoretical formulation and the practical implementation of this formalism to the case of extended systems, where a third condition, the localization of Koopmans' orbitals, proves crucial to reach seamlessly the thermodynamic limit. We illustrate the formalism by first studying one-dimensional molecular systems of increasing length. Then, we consider the band gaps of 30 paradigmatic solid-state test cases, for which accurate experimental and computational results are available. The results are found to be comparable with the state-of-the-art in diagrammatic techniques (self-consistent many-body perturbation theory with vertex corrections), notably using just a functional formulation for spectral properties and the physics of the generalized-gradient approximation; when ionization potentials are compared, the results are roughly twice as accurate.
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Presenters
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Nicola Marzari
STI IMX THEOS , École Polytechnique Fédérale de Lausanne, Theory and Simulation of Materials, EPFL
Authors
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Nicola Marzari
STI IMX THEOS , École Polytechnique Fédérale de Lausanne, Theory and Simulation of Materials, EPFL
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Linh Ngoc Nguyen
Institute for Molecular Engineering, University of Chicago
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Nicola Colonna
Theory and Simulation of Materials, EPFL
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Andrea Ferretti
Univ of Modena & Reggio Emilia