Theory of Nanoscale Organic Cavities: The Essential Role of Vibration-Photon Dressed States
arXiv:1707.02992 · doi:10.1021/acsphotonics.7b00728
Abstract
The interaction of organic molecules and molecular aggregates with electromagnetic fields that are strongly confined inside optical cavities within nanoscale volumes, has allowed the observation of exotic quantum regimes of light-matter interaction at room temperature, for a wide variety of cavity materials and geometries. Understanding the universal features of such organic cavities represents a significant challenge for theoretical modelling, as experiments show that these systems are characterized by an intricate competition between coherent and dissipative processes involving entangled nuclear, electronic and photonic degrees of freedom. In this review, we discuss a new theoretical framework that can successfully describe organic cavities under strong light-matter coupling. The theory combines standard concepts in chemical physics and quantum optics to provide a microscopic description of vibronic organic polaritons that is fully consistent with available experiments, and yet is profoundly different from the common view of organic polaritons. We show that by introducing a new class of vibronic polariton wave functions with a photonic component that is dressed by intramolecular vibrations, the new theory can offer a consistent solution to some of the long-standing puzzles in the interpretation of organic cavity photoluminescence. Throughout this review, we confront the predictions of the model with spectroscopic observations, and describe the conditions under which the theory reduces to previous approaches. We finally discuss possible extensions of the theory to account for realistic complexities of organic cavities such spatial inhomogeneities and the multi-mode nature of confined electromagnetic fields.
Review Article, 16 Pages, 9 Figures
References in corpus (7)
- Strong coupling between surface plasmon polaritons and emitters
- Coherent coupling of molecular resonators with a micro-cavity mode
- Extraordinary exciton conductance induced by strong coupling
- Cavity enhanced transport of excitons
- Photonics meets excitonics: natural and artificial molecular aggregates
- Theory of the strong coupling between quantum emitters and propagating surface plasmons
- When polarons meet polaritons: Exciton-vibration interactions in organic molecules strongly coupled to confined light fields
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- A quantum optics approach to photoinduced electron transfer in cavities
- Molecule-photon interactions in phononic environments
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- Three-player polaritons: nonadiabatic fingerprints in an entangled atom-molecule-photon system
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- Sympathetic Mechanism for Vibrational Condensation Enabled by Polariton Optomechanical Interaction
- Multiple Interacting Photonic Modes in Strongly Coupled Organic Microcavities
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- Pauli principle in polaritonic chemistry
- Practical guide to the statistical mechanics of molecular polaritons
- Ab initio study on the dynamics and spectroscopy of collective rovibrational polaritons
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- Non-Markovian effects in long-range polariton-mediated energy transfer
- Excitation density controlled regimes of collective light--matter dynamics
- Description of the non-Markovian dynamics of atoms in terms of a pure state
- Theory of dynamical superradiance in organic materials
- Beyond mean-field dynamics of the Dicke model with non-Markovian dephasing
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- Collective Effects of Organic Molecules based on Holstein-Tavis-Cummings Model
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