Mode Splitting Induced by Mesoscopic Electron Dynamics in Strongly Coupled Metal Nanoparticles on Dielectric Substrates
We study strong optical coupling of metal nanoparticle arrays with dielectric substrates. Based on the Fermi Golden Rule, the particle−substrate coupling is derived in terms of the photon absorption probability assuming a local dipole field. An increase in photocurrent gain is achieved thr...
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2019-08-01
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Online Access: | https://www.mdpi.com/2079-4991/9/9/1206 |
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doaj-475b2bea6e504ac2844ed28ce5ad15412020-11-25T01:20:30ZengMDPI AGNanomaterials2079-49912019-08-0199120610.3390/nano9091206nano9091206Mode Splitting Induced by Mesoscopic Electron Dynamics in Strongly Coupled Metal Nanoparticles on Dielectric SubstratesKatarzyna Kluczyk-Korch0Lucjan Jacak1Witold Aleksander Jacak2Christin David3Department of Quantum Technologies, Faculty of Fundamental Problems of Technology, Wrocław University of Science and Technology, 50-370 Wrocław, PolandDepartment of Quantum Technologies, Faculty of Fundamental Problems of Technology, Wrocław University of Science and Technology, 50-370 Wrocław, PolandDepartment of Quantum Technologies, Faculty of Fundamental Problems of Technology, Wrocław University of Science and Technology, 50-370 Wrocław, PolandMadrid Institute for Advanced Studies in Nanoscience (IMDEA Nanoscience), C/Faraday 9, 28049 Madrid, SpainWe study strong optical coupling of metal nanoparticle arrays with dielectric substrates. Based on the Fermi Golden Rule, the particle−substrate coupling is derived in terms of the photon absorption probability assuming a local dipole field. An increase in photocurrent gain is achieved through the optical coupling. In addition, we describe light-induced, mesoscopic electron dynamics via the nonlocal hydrodynamic theory of charges. At small nanoparticle size (<20 nm), the impact of this type of spatial dispersion becomes sizable. Both absorption and scattering cross sections of the nanoparticle are significantly increased through the contribution of additional nonlocal modes. We observe a splitting of local optical modes spanning several tenths of nanometers. This is a signature of semi-classical, strong optical coupling via the dynamic Stark effect, known as Autler−Townes splitting. The photocurrent generated in this description is increased by up to 2%, which agrees better with recent experiments than compared to identical classical setups with up to 6%. Both, the expressions derived for the particle−substrate coupling and the additional hydrodynamic equation for electrons are integrated into COMSOL for our simulations.https://www.mdpi.com/2079-4991/9/9/1206nanoparticlesmicroscopic electron dynamicssolar cellsnonlinear light interactiontheory and simulation |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Katarzyna Kluczyk-Korch Lucjan Jacak Witold Aleksander Jacak Christin David |
spellingShingle |
Katarzyna Kluczyk-Korch Lucjan Jacak Witold Aleksander Jacak Christin David Mode Splitting Induced by Mesoscopic Electron Dynamics in Strongly Coupled Metal Nanoparticles on Dielectric Substrates Nanomaterials nanoparticles microscopic electron dynamics solar cells nonlinear light interaction theory and simulation |
author_facet |
Katarzyna Kluczyk-Korch Lucjan Jacak Witold Aleksander Jacak Christin David |
author_sort |
Katarzyna Kluczyk-Korch |
title |
Mode Splitting Induced by Mesoscopic Electron Dynamics in Strongly Coupled Metal Nanoparticles on Dielectric Substrates |
title_short |
Mode Splitting Induced by Mesoscopic Electron Dynamics in Strongly Coupled Metal Nanoparticles on Dielectric Substrates |
title_full |
Mode Splitting Induced by Mesoscopic Electron Dynamics in Strongly Coupled Metal Nanoparticles on Dielectric Substrates |
title_fullStr |
Mode Splitting Induced by Mesoscopic Electron Dynamics in Strongly Coupled Metal Nanoparticles on Dielectric Substrates |
title_full_unstemmed |
Mode Splitting Induced by Mesoscopic Electron Dynamics in Strongly Coupled Metal Nanoparticles on Dielectric Substrates |
title_sort |
mode splitting induced by mesoscopic electron dynamics in strongly coupled metal nanoparticles on dielectric substrates |
publisher |
MDPI AG |
series |
Nanomaterials |
issn |
2079-4991 |
publishDate |
2019-08-01 |
description |
We study strong optical coupling of metal nanoparticle arrays with dielectric substrates. Based on the Fermi Golden Rule, the particle−substrate coupling is derived in terms of the photon absorption probability assuming a local dipole field. An increase in photocurrent gain is achieved through the optical coupling. In addition, we describe light-induced, mesoscopic electron dynamics via the nonlocal hydrodynamic theory of charges. At small nanoparticle size (<20 nm), the impact of this type of spatial dispersion becomes sizable. Both absorption and scattering cross sections of the nanoparticle are significantly increased through the contribution of additional nonlocal modes. We observe a splitting of local optical modes spanning several tenths of nanometers. This is a signature of semi-classical, strong optical coupling via the dynamic Stark effect, known as Autler−Townes splitting. The photocurrent generated in this description is increased by up to 2%, which agrees better with recent experiments than compared to identical classical setups with up to 6%. Both, the expressions derived for the particle−substrate coupling and the additional hydrodynamic equation for electrons are integrated into COMSOL for our simulations. |
topic |
nanoparticles microscopic electron dynamics solar cells nonlinear light interaction theory and simulation |
url |
https://www.mdpi.com/2079-4991/9/9/1206 |
work_keys_str_mv |
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