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Diffractive optics and nanophotonics: resolution below the diffraction limit

In this book the authors present several examples of techniques used to overcome the Abby diffraction limit using flat and 3D diffractive optical elements, photonic crystal lenses, photonic jets, and surface plasmon diffractive optics. The structures discussed can be used in the microwave and THz ra...

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Detalles Bibliográficos
Autores principales: Minin, Igor, Minin, Oleg
Lenguaje:eng
Publicado: Springer 2016
Materias:
Acceso en línea:https://dx.doi.org/10.1007/978-3-319-24253-8
http://cds.cern.ch/record/2113044
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author Minin, Igor
Minin, Oleg
author_facet Minin, Igor
Minin, Oleg
author_sort Minin, Igor
collection CERN
description In this book the authors present several examples of techniques used to overcome the Abby diffraction limit using flat and 3D diffractive optical elements, photonic crystal lenses, photonic jets, and surface plasmon diffractive optics. The structures discussed can be used in the microwave and THz range and also as scaled models for optical frequencies. Such nano-optical microlenses can be integrated, for example, into existing semiconductor heterostructure platforms for next-generation optoelectronic applications. Chapter 1 considers flat diffractive lenses and innovative 3D radiating structures including a conical millimeter-wave Fresnel zone plate (FZP) lens proposed for subwavelength focusing. In chapter 2 the subwavelength focusing properties of diffractive photonic crystal lenses are considered and it is shown that at least three different types of photonic crystal lens are possible.  With the aim of achieving subwavelength focusing, in chapter 3 an alternative mechanism to produce photonic jets at Terahertz frequencies (terajets) using 3D dielectric particles of arbitrary size (cuboids) is considered.  A scheme to create a 2D “teraknife” using dielectric rods is also discussed.  In the final chapter the successful adaptation of free-space 3D binary phase-reversal conical FZPs for operation on surface plasmon-polariton (SPP) waves demonstrates that analogues of Fourier diffractive components can be developed for in-plane SPP 3D optics.< Review ing theory, modelling and experiment, this book will be a valuable resource for students and researchers working on nanophotonics and sub-wavelength focusing and imaging.
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spelling cern-21130442021-04-21T19:59:59Zdoi:10.1007/978-3-319-24253-8http://cds.cern.ch/record/2113044engMinin, IgorMinin, OlegDiffractive optics and nanophotonics: resolution below the diffraction limitOther Fields of PhysicsIn this book the authors present several examples of techniques used to overcome the Abby diffraction limit using flat and 3D diffractive optical elements, photonic crystal lenses, photonic jets, and surface plasmon diffractive optics. The structures discussed can be used in the microwave and THz range and also as scaled models for optical frequencies. Such nano-optical microlenses can be integrated, for example, into existing semiconductor heterostructure platforms for next-generation optoelectronic applications. Chapter 1 considers flat diffractive lenses and innovative 3D radiating structures including a conical millimeter-wave Fresnel zone plate (FZP) lens proposed for subwavelength focusing. In chapter 2 the subwavelength focusing properties of diffractive photonic crystal lenses are considered and it is shown that at least three different types of photonic crystal lens are possible.  With the aim of achieving subwavelength focusing, in chapter 3 an alternative mechanism to produce photonic jets at Terahertz frequencies (terajets) using 3D dielectric particles of arbitrary size (cuboids) is considered.  A scheme to create a 2D “teraknife” using dielectric rods is also discussed.  In the final chapter the successful adaptation of free-space 3D binary phase-reversal conical FZPs for operation on surface plasmon-polariton (SPP) waves demonstrates that analogues of Fourier diffractive components can be developed for in-plane SPP 3D optics.< Review ing theory, modelling and experiment, this book will be a valuable resource for students and researchers working on nanophotonics and sub-wavelength focusing and imaging.Springeroai:cds.cern.ch:21130442016
spellingShingle Other Fields of Physics
Minin, Igor
Minin, Oleg
Diffractive optics and nanophotonics: resolution below the diffraction limit
title Diffractive optics and nanophotonics: resolution below the diffraction limit
title_full Diffractive optics and nanophotonics: resolution below the diffraction limit
title_fullStr Diffractive optics and nanophotonics: resolution below the diffraction limit
title_full_unstemmed Diffractive optics and nanophotonics: resolution below the diffraction limit
title_short Diffractive optics and nanophotonics: resolution below the diffraction limit
title_sort diffractive optics and nanophotonics: resolution below the diffraction limit
topic Other Fields of Physics
url https://dx.doi.org/10.1007/978-3-319-24253-8
http://cds.cern.ch/record/2113044
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