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
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Cited by in corpus (6)
- Effects of disorder on polaritonic and dark states in a cavity using the disordered Tavis-Cummings model
- A quantum optics approach to photoinduced electron transfer in cavities
- Nonadiabatic phenomena in molecular vibrational polaritons
- Simple but accurate estimation of light-matter coupling strength and optical loss for a molecular emitter coupled with photonic modes
- Polariton response in the presence of Brownian dissipation from molecular vibrations
- Collective Effects of Organic Molecules based on Holstein-Tavis-Cummings Model