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Theoretical Methods for Ultrastrong Light–Matter Interactions

Theoretical Methods for Ultrastrong Light–Matter Interactions This article reviews theoretical methods developed in the last decade to understand cavity quantum electrodynamics in the ultrastrong‐coupling regime, where the strength of the light–matter interaction becomes comparable to the photon frequency. Along with profound modifications of fundamental quantum optical effects giving rise to a rich phenomenology, this regime introduces significant theoretical challenges. One of the most important is the break‐down of the rotating‐wave approximation which neglects all non‐resonant terms in light–matter interaction Hamiltonians. Consequently, a large part of the quantum optical theoretical framework has to be revisited in order to accurately account for all interaction terms in this regime. In this article, a broad overview of the recent progress is given, ranging from analytical estimates of ground‐state properties to proper derivations of master equations and computation of photodetection signals. For each aspect of the theory, the basic principles of the methods are illustrated on paradigmatic models such as quantum Rabi and spin‐boson models. The validity of effective Hamiltonians for the different experimental platforms is discussed in the last part of the article, addressing recent debates on fundamental issues related to gauge invariance in the ultrastrong‐coupling regime. http://www.deepdyve.com/assets/images/DeepDyve-Logo-lg.png Advanced Quantum Technologies Wiley

Theoretical Methods for Ultrastrong Light–Matter Interactions

Advanced Quantum Technologies , Volume 3 (7) – Jul 1, 2020

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Publisher
Wiley
Copyright
© 2020 WILEY‐VCH Verlag GmbH & Co. KGaA, Weinheim
eISSN
2511-9044
DOI
10.1002/qute.201900140
Publisher site
See Article on Publisher Site

Abstract

This article reviews theoretical methods developed in the last decade to understand cavity quantum electrodynamics in the ultrastrong‐coupling regime, where the strength of the light–matter interaction becomes comparable to the photon frequency. Along with profound modifications of fundamental quantum optical effects giving rise to a rich phenomenology, this regime introduces significant theoretical challenges. One of the most important is the break‐down of the rotating‐wave approximation which neglects all non‐resonant terms in light–matter interaction Hamiltonians. Consequently, a large part of the quantum optical theoretical framework has to be revisited in order to accurately account for all interaction terms in this regime. In this article, a broad overview of the recent progress is given, ranging from analytical estimates of ground‐state properties to proper derivations of master equations and computation of photodetection signals. For each aspect of the theory, the basic principles of the methods are illustrated on paradigmatic models such as quantum Rabi and spin‐boson models. The validity of effective Hamiltonians for the different experimental platforms is discussed in the last part of the article, addressing recent debates on fundamental issues related to gauge invariance in the ultrastrong‐coupling regime.

Journal

Advanced Quantum TechnologiesWiley

Published: Jul 1, 2020

Keywords: ; ; ;

References