Pliable polaritons: Wannier exciton-plasmon coupling in metal-semiconductor structures

Author:

Khurgin Jacob B.1

Affiliation:

1. Johns Hopkins University, Baltimore, MD 21218, USA

Abstract

AbstractPlasmonic structures are known to support the modes with sub-wavelength volumes in which the field/matter interactions are greatly enhanced. Coupling between the molecular excitations and plasmons leading to the formation of “plexcitons” has been investigated for a number of organic molecules. However, plasmon-exciton coupling in metal/semiconductor structures has not experienced the same degree of attention. In this work, we show that the “very strong coupling” regime in which the Rabi energy exceeds the exciton binding energy is attainable in semiconductor-cladded plasmonic nanoparticles and leads to the formation of Wannier exciton-plasmon polariton (WEPP), which is bound to the metal nanoparticle and characterized by dramatically smaller (by a factor of a few) excitonic radius and correspondingly higher ionization energy. This higher ionization energy, which exceeding approaches 100 meV for the CdS/Ag structures, may make room-temperature Bose-Einstein condensation and polariton lasing in plasmonic/semiconductor structures possible.

Publisher

Walter de Gruyter GmbH

Subject

Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology

Reference100 articles.

1. How to deal with the loss in plasmonics and metamaterials;Nature Nanotechnol,2015

2. Microstructure and pseudomorphism in molecular-beam epitaxially grown Zncds on Gaas(001);Appl Phys Lett,1993

3. Excitonic radius in the cavity polariton in the regime of very strong coupling;Solid State Commun,2001

4. Near-field imaging of mid-infrared surface phonon polariton propagation;Appl Phys Lett,2005

5. Exciton-polaritons in microcavities: present and future;Appl Phys a Mater Sci Processing,2007

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