Variational Polaron Theory for Ground States of Strongly Coupled Light–Matter and Electron–Phonon Systems

Abstract Strong light–matter and electron–phonon coupling generate ground states dressed by virtual bosonic excitations, making bare-state truncations and perturbative treatments unreliable in the ultrastrong-coupling regime. We introduce a nonperturbative variational ground-state framework based on a state-dependent polaron transformation, combined with a product-state ansatz and a second-order perturbative correction for residual matter–boson entanglement. We show that the optimized transformed frame becomes asymptotically decoupled at infinite coupling, because the leading linear coupling is canceled while off-diagonal matter transitions are suppressed by displaced-oscillator overlaps. The approach is asymptotically correct in both weak- and strong-coupling limits and remains accurate in the intermediate regime, where fixed polaron transformations are least reliable. Dicke-model benchmarks reproduce ground-state energies, fidelities, and the superradiant transition, with second-order energy errors below 0.2%. Holstein-model benchmarks yield errors below 0.5% and clarify how translational symmetry affects wave function quality. This dressed-basis framework enables nonperturbative modeling of strongly coupled light–matter and electron–phonon systems.

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Publication Details

Journal
The Journal of Physical Chemistry Letters
Published
2026-09-21
DOI
https://doi.org/10.1021/acs.jpclett.6c02011
Primary Topic
Strong Light-Matter Interactions
Type
article
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Variational Polaron Theory for Ground States of Strongly Coupled Light–Matter and Electron–Phonon Systems

Nguyễn Thành Phúc
The Journal of Physical Chemistry Letters
Strong Light-Matter Interactions
article

Variational Polaron Theory for Ground States of Strongly Coupled Light–Matter and Electron–Phonon Systems

Nguyễn Thành Phúc
article en

Abstract

Abstract Strong light–matter and electron–phonon coupling generate ground states dressed by virtual bosonic excitations, making bare-state truncations and perturbative treatments unreliable in the ultrastrong-coupling regime. We introduce a nonperturbative variational ground-state framework based on a state-dependent polaron transformation, combined with a product-state ansatz and a second-order perturbative correction for residual matter–boson entanglement. We show that the optimized transformed frame becomes asymptotically decoupled at infinite coupling, because the leading linear coupling is canceled while off-diagonal matter transitions are suppressed by displaced-oscillator overlaps. The approach is asymptotically correct in both weak- and strong-coupling limits and remains accurate in the intermediate regime, where fixed polaron transformations are least reliable. Dicke-model benchmarks reproduce ground-state energies, fidelities, and the superradiant transition, with second-order energy errors below 0.2%. Holstein-model benchmarks yield errors below 0.5% and clarify how translational symmetry affects wave function quality. This dressed-basis framework enables nonperturbative modeling of strongly coupled light–matter and electron–phonon systems.

The Journal of Physical Chemistry Letters
Kyoto University (JP)
Openalex Percentile: Top 48%
Strong Light-Matter Interactions
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Variational Polaron Theory for Ground States of Strongly Coupled Light–Matter and Electron–Phonon Systems — Nguyễn Thành Phúc · The Journal of Physical Chemistry Letters (2026) | TGRS Research Map | TGRS