Electron-photon exchange-correlation approximation for quantum-electrodynamical density-functional theory

Author:

Lu I-Te1ORCID,Ruggenthaler Michael1ORCID,Tancogne-Dejean Nicolas1ORCID,Latini Simone12ORCID,Penz Markus13ORCID,Rubio Angel14

Affiliation:

1. Max Planck Institute for the Structure and Dynamics of Matter and Center for Free-Electron Laser Science, Luruper Chaussee 149, 22761 Hamburg, Germany

2. Department of Physics, Technical University of Denmark, 2800 Kgs. Lyngby, Denmark

3. Department of Computer Science, Oslo Metropolitan University, 0130 Oslo, Norway

4. Center for Computational Quantum Physics (CCQ), The Flatiron Institute, 162 Fifth Avenue, New York, New York 10010, USA

Abstract

Quantum-electrodynamical density-functional theory (QEDFT) provides a promising avenue for exploring complex light-matter interactions in optical cavities for real materials. Similar to conventional density-functional theory, the Kohn-Sham formulation of QEDFT needs approximations for the generally unknown exchange-correlation functional. In addition to the usual electron-electron exchange-correlation potential, an approximation for the electron-photon exchange-correlation potential is needed. A recent electron-photon exchange functional [C. Schäfer , ], derived from the equation of motion of the nonrelativistic Pauli-Fierz Hamiltonian, shows robust performance in one-dimensional systems across weak- and strong-coupling regimes. Yet, its performance in reproducing electron densities in higher dimensions remains unexplored. Here we consider this QEDFT functional approximation from one- to three-dimensional finite systems and across weak to strong light-matter couplings. The electron-photon exchange approximation provides excellent results in the ultrastrong-coupling regime. However, to ensure accuracy also in the weak-coupling regime across higher dimensions, we introduce a computationally efficient renormalization factor for the electron-photon exchange functional, which accounts for part of the electron-photon correlation contribution. These findings extend the applicability of photon-exchange-based functionals to realistic cavity-matter systems, fostering the field of cavity QED (quantum-electrodynamics) materials engineering. Published by the American Physical Society 2024

Funder

Deutsche Forschungsgemeinschaft

Alexander von Humboldt-Stiftung

Simons Foundation

Publisher

American Physical Society (APS)

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