» Articles » PMID: 35726239

A Theoretical Perspective on Molecular Polaritonics

Overview
Journal ACS Photonics
Date 2022 Jun 21
PMID 35726239
Authors
Affiliations
Soon will be listed here.
Abstract

In the past decade, much theoretical research has focused on studying the strong coupling between organic molecules (or quantum emitters, in general) and light modes. The description and prediction of polaritonic phenomena emerging in this light-matter interaction regime have proven to be difficult tasks. The challenge originates from the enormous number of degrees of freedom that need to be taken into account, both in the organic molecules and in their photonic environment. On one hand, the accurate treatment of the vibrational spectrum of the former is key, and simplified quantum models are not valid in many cases. On the other hand, most photonic setups have complex geometric and material characteristics, with the result that photon fields corresponding to more than just a single electromagnetic mode contribute to the light-matter interaction in these platforms. Moreover, loss and dissipation, in the form of absorption or radiation, must also be included in the theoretical description of polaritons. Here, we review and offer our own perspective on some of the work recently done in the modeling of interacting molecular and optical states with increasing complexity.

Citing Articles

Multiple interacting photonic modes in strongly coupled organic microcavities.

Herrera F, Barnes W Philos Trans A Math Phys Eng Sci. 2024; 382(2287):20230343.

PMID: 39717976 PMC: 11667587. DOI: 10.1098/rsta.2023.0343.


Electron-assisted probing of polaritonic light-matter states.

Abad-Arredondo J, Fernandez-Dominguez A Nanophotonics. 2024; 13(11):2015-2027.

PMID: 39635082 PMC: 11501223. DOI: 10.1515/nanoph-2023-0907.


Molecular Polaritons for Chemistry, Photonics and Quantum Technologies.

Xiang B, Xiong W Chem Rev. 2024; 124(5):2512-2552.

PMID: 38416701 PMC: 10941193. DOI: 10.1021/acs.chemrev.3c00662.


Numerically Exact Solution for a Real Polaritonic System under Vibrational Strong Coupling in Thermodynamic Equilibrium: Loss of Light-Matter Entanglement and Enhanced Fluctuations.

Sidler D, Ruggenthaler M, Rubio A J Chem Theory Comput. 2023; 19(23):8801-8814.

PMID: 37972347 PMC: 10720342. DOI: 10.1021/acs.jctc.3c00092.


Cavity-Modified Chemiluminescent Reaction of Dioxetane.

Gudem M, Kowalewski M J Phys Chem A. 2023; 127(45):9483-9494.

PMID: 37845803 PMC: 10658626. DOI: 10.1021/acs.jpca.3c05664.


References
1.
Zengin G, Wersall M, Nilsson S, Antosiewicz T, Kall M, Shegai T . Realizing Strong Light-Matter Interactions between Single-Nanoparticle Plasmons and Molecular Excitons at Ambient Conditions. Phys Rev Lett. 2015; 114(15):157401. DOI: 10.1103/PhysRevLett.114.157401. View

2.
Fregoni J, Garcia-Vidal F, Feist J . Theoretical Challenges in Polaritonic Chemistry. ACS Photonics. 2022; 9(4):1096-1107. PMC: 9026242. DOI: 10.1021/acsphotonics.1c01749. View

3.
Meschede , WALTHER , Muller . One-atom maser. Phys Rev Lett. 1985; 54(6):551-554. DOI: 10.1103/PhysRevLett.54.551. View

4.
Weisbuch , Nishioka , Ishikawa , Arakawa . Observation of the coupled exciton-photon mode splitting in a semiconductor quantum microcavity. Phys Rev Lett. 1992; 69(23):3314-3317. DOI: 10.1103/PhysRevLett.69.3314. View

5.
Zhang Y, He S, Guo W, Hu Y, Huang J, Mulcahy J . Surface-Plasmon-Driven Hot Electron Photochemistry. Chem Rev. 2017; 118(6):2927-2954. DOI: 10.1021/acs.chemrev.7b00430. View