Non-classical light scattered by laser-pumped molecules possessing permanent dipoles

Squeezing in resonance fluorescence processes of a laser-pumped molecule possessing permanent dipoles is shown. A weak low-frequency coherent field pumps the sample near resonance with the dynamically Stark-splitting states induced by a second stronger laser field driving the main two-level transiti...

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Autores principales: Mîrzac, Alexandra, Ciornea, Viorel, Macovei, Mihai
Formato: article
Lenguaje:EN
Publicado: D.Ghitu Institute of Electronic Engineering and Nanotechnologies 2018
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Acceso en línea:https://doaj.org/article/a1935f9abecf440086cce8894d8bbf11
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spelling oai:doaj.org-article:a1935f9abecf440086cce8894d8bbf112021-11-21T11:56:38ZNon-classical light scattered by laser-pumped molecules possessing permanent dipoles533.9+538.92537-63651810-648Xhttps://doaj.org/article/a1935f9abecf440086cce8894d8bbf112018-07-01T00:00:00Zhttps://mjps.nanotech.md/archive/2018/article/71447https://doaj.org/toc/1810-648Xhttps://doaj.org/toc/2537-6365Squeezing in resonance fluorescence processes of a laser-pumped molecule possessing permanent dipoles is shown. A weak low-frequency coherent field pumps the sample near resonance with the dynamically Stark-splitting states induced by a second stronger laser field driving the main two-level transition. The fluorescence spectrum consists of three coherently scattered spectral lines and up to nine incoherently scattered spectral lines. Compared with a similar problem yet in the absence of permanent dipoles, aditional squeezing regions are found.Mîrzac, AlexandraCiornea, ViorelMacovei, MihaiD.Ghitu Institute of Electronic Engineering and NanotechnologiesarticlePhysicsQC1-999ElectronicsTK7800-8360ENMoldavian Journal of the Physical Sciences, Vol 17, Iss 1-2, Pp 95-104 (2018)
institution DOAJ
collection DOAJ
language EN
topic Physics
QC1-999
Electronics
TK7800-8360
spellingShingle Physics
QC1-999
Electronics
TK7800-8360
Mîrzac, Alexandra
Ciornea, Viorel
Macovei, Mihai
Non-classical light scattered by laser-pumped molecules possessing permanent dipoles
description Squeezing in resonance fluorescence processes of a laser-pumped molecule possessing permanent dipoles is shown. A weak low-frequency coherent field pumps the sample near resonance with the dynamically Stark-splitting states induced by a second stronger laser field driving the main two-level transition. The fluorescence spectrum consists of three coherently scattered spectral lines and up to nine incoherently scattered spectral lines. Compared with a similar problem yet in the absence of permanent dipoles, aditional squeezing regions are found.
format article
author Mîrzac, Alexandra
Ciornea, Viorel
Macovei, Mihai
author_facet Mîrzac, Alexandra
Ciornea, Viorel
Macovei, Mihai
author_sort Mîrzac, Alexandra
title Non-classical light scattered by laser-pumped molecules possessing permanent dipoles
title_short Non-classical light scattered by laser-pumped molecules possessing permanent dipoles
title_full Non-classical light scattered by laser-pumped molecules possessing permanent dipoles
title_fullStr Non-classical light scattered by laser-pumped molecules possessing permanent dipoles
title_full_unstemmed Non-classical light scattered by laser-pumped molecules possessing permanent dipoles
title_sort non-classical light scattered by laser-pumped molecules possessing permanent dipoles
publisher D.Ghitu Institute of Electronic Engineering and Nanotechnologies
publishDate 2018
url https://doaj.org/article/a1935f9abecf440086cce8894d8bbf11
work_keys_str_mv AT mirzacalexandra nonclassicallightscatteredbylaserpumpedmoleculespossessingpermanentdipoles
AT ciorneaviorel nonclassicallightscatteredbylaserpumpedmoleculespossessingpermanentdipoles
AT macoveimihai nonclassicallightscatteredbylaserpumpedmoleculespossessingpermanentdipoles
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