Ab-initio non-relativistic quantum electrodynamics: Bridging quantum chemistry and quantum optics from weak to strong coupling
Christian Sch\"afer (1), Michael Ruggenthaler (1), Angel Rubio (1), ((1) Max Planck Institute for the Structure, Dynamics of Matter, Center, for Free-Electron Laser Science & Department of Physics, Germany)

TL;DR
This paper develops an exact theoretical framework for describing coupled nucleus-electron-photon systems in quantum electrodynamics, bridging quantum chemistry and quantum optics across different coupling regimes, and providing a basis for more accurate models.
Contribution
It introduces a generalized Born-Huang expansion for non-relativistic QED, enabling first-principles analysis of QED-chemistry phenomena and bridging quantum chemistry with quantum optics.
Findings
Analytical solutions for photonic surfaces and non-adiabatic couplings.
Demonstrates how existing Floquet theory can be adapted to QED.
Shows that simple few-level models can give incorrect predictions.
Abstract
By applying the Born-Huang expansion, originally developed for coupled nucleus-electron systems, to the full nucleus-electron-photon Hamiltonian of non-relativistic quantum electrodynamics (QED) in the long-wavelength approximation, we deduce an exact set of coupled equations for electrons on photonic energy surfaces and the nuclei on the resulting polaritonic energy surfaces. This theory describes seamlessly many-body interactions between nuclei, electrons and photons including the quantum fluctuation of the electromagnetic field and provides a proper first-principle framework to describe QED-chemistry phenomena. Since the photonic surfaces and the corresponding non-adiabatic coupling elements can be solved analytically, the resulting expansion can be brought into a compact form which allows us to analyze aspects of coupled nucleus-electron-photon systems in a simple and intuitive…
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