Polariton Creation in Coupled Cavity Arrays with Spectrally Disordered Emitters

Fuente: arXiv
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Hauptverfasser: Patton, Jesse, Norman, Victoria A., Mann, Eliana C., Puri, Brinda, Scalettar, Richard T., Radulaski, Marina
Format: Preprint
Veröffentlicht: 2021
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author Patton, Jesse
Norman, Victoria A.
Mann, Eliana C.
Puri, Brinda
Scalettar, Richard T.
Radulaski, Marina
author_facet Patton, Jesse
Norman, Victoria A.
Mann, Eliana C.
Puri, Brinda
Scalettar, Richard T.
Radulaski, Marina
contents Integrated photonics has been a promising platform for analog quantum simulation of condensed matter phenomena in strongly correlated systems. To that end, we explore the implementation of all-photonic quantum simulators in coupled cavity arrays with integrated ensembles of spectrally disordered emitters. Our model is reflective of color center ensembles integrated into photonic crystal cavity arrays. Using the Quantum Master Equation and the Effective Hamiltonian approaches, we study energy band formation and wavefunction properties in the open quantum Tavis-Cummings-Hubbard framework. We find conditions for polariton creation and (de)localization under experimentally relevant values of disorder in emitter frequencies, cavity resonance frequencies, and emitter-cavity coupling rates. To quantify these properties, we introduce two metrics, the polaritonic and nodal participation ratios, that characterize the light-matter hybridization and the node delocalization of the wavefunction, respectively. These new metrics combined with the Effective Hamiltonian approach prove to be a powerful toolbox for cavity quantum electrodynamical engineering of solid-state systems.
format Preprint
id arxiv_https___arxiv_org_abs_2112_15469
institution arXiv
publishDate 2021
record_format arxiv
spellingShingle Polariton Creation in Coupled Cavity Arrays with Spectrally Disordered Emitters
Patton, Jesse
Norman, Victoria A.
Mann, Eliana C.
Puri, Brinda
Scalettar, Richard T.
Radulaski, Marina
Quantum Physics
Strongly Correlated Electrons
Optics
Integrated photonics has been a promising platform for analog quantum simulation of condensed matter phenomena in strongly correlated systems. To that end, we explore the implementation of all-photonic quantum simulators in coupled cavity arrays with integrated ensembles of spectrally disordered emitters. Our model is reflective of color center ensembles integrated into photonic crystal cavity arrays. Using the Quantum Master Equation and the Effective Hamiltonian approaches, we study energy band formation and wavefunction properties in the open quantum Tavis-Cummings-Hubbard framework. We find conditions for polariton creation and (de)localization under experimentally relevant values of disorder in emitter frequencies, cavity resonance frequencies, and emitter-cavity coupling rates. To quantify these properties, we introduce two metrics, the polaritonic and nodal participation ratios, that characterize the light-matter hybridization and the node delocalization of the wavefunction, respectively. These new metrics combined with the Effective Hamiltonian approach prove to be a powerful toolbox for cavity quantum electrodynamical engineering of solid-state systems.
title Polariton Creation in Coupled Cavity Arrays with Spectrally Disordered Emitters
topic Quantum Physics
Strongly Correlated Electrons
Optics
url https://arxiv.org/abs/2112.15469