Ultrastrong Coupling of a Single Molecule to a Plasmonic Nanocavity: A First-Principles Study
Journal article, 2022

Ultrastrong coupling (USC) is a distinct regime of light-matter interaction in which the coupling strength is comparable to the resonance energy of the cavity or emitter. In the USC regime, common approximations to quantum optical Hamiltonians, such as the rotating wave approximation, break down as the ground state of the coupled system gains photonic character due to admixing of vacuum states with higher excited states, leading to ground-state energy changes. USC is usually achieved by collective coherent coupling of many quantum emitters to a single mode cavity, whereas USC with a single molecule remains challenging. Here, we show by time-dependent density functional theory (TDDFT) calculations that a single organic molecule can reach USC with a plasmonic dimer, consisting of a few hundred atoms. In this context, we discuss the capacity of TDDFT to represent strong coupling and its connection to the quantum optical Hamiltonian. We find that USC leads to appreciable ground-state energy modifications accounting for a non-negligible part of the total interaction energy, comparable to kBT at room temperature.

strong coupling

excitons

time-dependent density functional theory

nanophotonics

plasmonics

Author

Mikael Juhani Kuisma

University of Jyväskylä

Chalmers, Physics, Materials and Surface Theory

Benjamin Rousseaux

Ecole Normale Superieure (ENS)

Sorbonne University

K. M. Czajkowski

University of Warsaw

Tuomas Rossi

Aalto University

Chalmers, Physics, Condensed Matter and Materials Theory

Timur Shegai

Chalmers, Physics, Nano and Biophysics

Paul Erhart

Chalmers, Physics, Condensed Matter and Materials Theory

Tomasz Antosiewicz

Chalmers, Physics, Bionanophotonics

University of Warsaw

ACS Photonics

2330-4022 (eISSN)

Vol. 9 1065-1077

Plasmon-exciton coupling at the attosecond-subnanometer scale: Tailoring strong light-matter interactions at room temperature

Knut and Alice Wallenberg Foundation (2019.0140), 2020-07-01 -- 2025-06-30.

Towards nanoscale reality in plasmonic hot-carrier generation (RealNanoPlasmon)

European Commission (EC) (EC/H2020/838996), 2019-04-01 -- 2021-03-31.

Kvantplasmonik – en teknologi för foton-fotonväxelverkan på kvantnivå vid rumstemperatur

Swedish Research Council (VR) (2016-06059), 2017-01-01 -- 2022-12-31.

Infrastructure

C3SE (Chalmers Centre for Computational Science and Engineering)

Subject Categories

Atom and Molecular Physics and Optics

Other Physics Topics

Condensed Matter Physics

DOI

10.1021/acsphotonics.2c00066

PubMed

35308405

More information

Latest update

12/12/2023