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Super-localisation of a point-like emitter in a resonant environment: Correction of the mirage effect

In this paper, we show that it is possible to overcome one of the fundamental limitations of super-resolution microscopy: the necessity to be in an optically homogeneous environment. Using recent modal approximation results from [10, 7], we show, as a proof of concept, that it is possible to recover...

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Detalles Bibliográficos
Autores principales: Baldassari, Lorenzo, Millien, Pierre, Vanel, Alice L
Lenguaje:eng
Publicado: 2022
Materias:
Acceso en línea:https://dx.doi.org/10.3934/ipi.2022054
http://cds.cern.ch/record/2852828
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author Baldassari, Lorenzo
Millien, Pierre
Vanel, Alice L
author_facet Baldassari, Lorenzo
Millien, Pierre
Vanel, Alice L
author_sort Baldassari, Lorenzo
collection CERN
description In this paper, we show that it is possible to overcome one of the fundamental limitations of super-resolution microscopy: the necessity to be in an optically homogeneous environment. Using recent modal approximation results from [10, 7], we show, as a proof of concept, that it is possible to recover the position of a single point-like emitter in a known resonant environment from far-field measurements, with a precision two orders of magnitude below the classical Rayleigh limit. The procedure does not involve solving any partial differential equation, is computationally light (optimisation in with of the order of ) and is therefore suited for the recovery of a very large number of single emitters.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2022
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spelling cern-28528282023-03-21T15:44:41Zdoi:10.3934/ipi.2022054http://cds.cern.ch/record/2852828engBaldassari, LorenzoMillien, PierreVanel, Alice LSuper-localisation of a point-like emitter in a resonant environment: Correction of the mirage effectHealth Physics and Radiation EffectsIn this paper, we show that it is possible to overcome one of the fundamental limitations of super-resolution microscopy: the necessity to be in an optically homogeneous environment. Using recent modal approximation results from [10, 7], we show, as a proof of concept, that it is possible to recover the position of a single point-like emitter in a known resonant environment from far-field measurements, with a precision two orders of magnitude below the classical Rayleigh limit. The procedure does not involve solving any partial differential equation, is computationally light (optimisation in with of the order of ) and is therefore suited for the recovery of a very large number of single emitters.oai:cds.cern.ch:28528282022
spellingShingle Health Physics and Radiation Effects
Baldassari, Lorenzo
Millien, Pierre
Vanel, Alice L
Super-localisation of a point-like emitter in a resonant environment: Correction of the mirage effect
title Super-localisation of a point-like emitter in a resonant environment: Correction of the mirage effect
title_full Super-localisation of a point-like emitter in a resonant environment: Correction of the mirage effect
title_fullStr Super-localisation of a point-like emitter in a resonant environment: Correction of the mirage effect
title_full_unstemmed Super-localisation of a point-like emitter in a resonant environment: Correction of the mirage effect
title_short Super-localisation of a point-like emitter in a resonant environment: Correction of the mirage effect
title_sort super-localisation of a point-like emitter in a resonant environment: correction of the mirage effect
topic Health Physics and Radiation Effects
url https://dx.doi.org/10.3934/ipi.2022054
http://cds.cern.ch/record/2852828
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AT millienpierre superlocalisationofapointlikeemitterinaresonantenvironmentcorrectionofthemirageeffect
AT vanelalicel superlocalisationofapointlikeemitterinaresonantenvironmentcorrectionofthemirageeffect