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Open Quantum Systems Decoherence
Quantum Chemistry
Universal Scaling and Many-Body Resurrection of Polaritonic Double-Quantum Coherences
arXiv
Authors: Maxim Sukharev
Year
2026
Paper ID
45595
Status
Preprint
Abstract Read
~2 min
Abstract Words
151
Citations
N/A
Abstract
The ultrafast nonlinear optical response of molecular ensembles is fundamentally altered under strong light-matter coupling. To rigorously isolate the genuine many-body contributions, an exact time-domain field-subtraction protocol is developed within a fully non-perturbative Maxwell-Liouville framework explicitly incorporating the two-exciton manifold in real space and time. This approach reveals that while collective cavity delocalization drives the macroscopic nonlinear signal toward a severe harmonic cancellation (an effect termed "spectral starvation"), intrinsic many-body molecular interactions robustly resurrect genuine polaritonic double-quantum coherences (DQCs). This many-body resurrection is governed by a universal two-photon matching rule, ΔB + 4J = ΩR, linking molecular anharmonicity $ΔB$ to the macroscopic Rabi splitting $ΩR$ and excitonic coupling (J). Crucially, this dictates that J-aggregates (J < 0) uniquely isolate the resonant many-body state below the dense two-exciton scattering continuum, protecting the macroscopic coherence from spatial fragmentation. This predictive framework establishes a direct phase diagram to engineer and protect optical nonlinearities across diverse strongly coupled platforms.
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- This paper contributes to the Quantum Chemistry research area in the Quantum Articles archive.
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- The ultrafast nonlinear optical response of molecular ensembles is fundamentally altered under strong light-matter coupling.
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