Planewave diffraction by gratings made of isotropic negative phase-velocity materials

We analyze the diffraction of a plane wave by a diffraction (surface-relief) grating made of an Isotropic negative phase-velocity material. Three different approaches are employed, and the results are compared with those for conventional (i.e., positive phase-velocity) materials. Resonant excitation...

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Publicado: 2004
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Acceso en línea:https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_0277786X_v5508_n_p268_Depine
http://hdl.handle.net/20.500.12110/paper_0277786X_v5508_n_p268_Depine
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spelling paper:paper_0277786X_v5508_n_p268_Depine2023-06-08T15:26:21Z Planewave diffraction by gratings made of isotropic negative phase-velocity materials Grating Negative phase velocity Nonspecular diffraction Numerical techniques Specular diffraction Surface waves Boundary value problems Dielectric materials Diffraction gratings Maxwell equations Surface waves Vectors Nonspecular diffraction Numerical techniques Phase velocity Specular diffraction Electromagnetic wave diffraction We analyze the diffraction of a plane wave by a diffraction (surface-relief) grating made of an Isotropic negative phase-velocity material. Three different approaches are employed, and the results are compared with those for conventional (i.e., positive phase-velocity) materials. Resonant excitation of surface waves on the new types of gratings is examined. 2004 https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_0277786X_v5508_n_p268_Depine http://hdl.handle.net/20.500.12110/paper_0277786X_v5508_n_p268_Depine
institution Universidad de Buenos Aires
institution_str I-28
repository_str R-134
collection Biblioteca Digital - Facultad de Ciencias Exactas y Naturales (UBA)
topic Grating
Negative phase velocity
Nonspecular diffraction
Numerical techniques
Specular diffraction
Surface waves
Boundary value problems
Dielectric materials
Diffraction gratings
Maxwell equations
Surface waves
Vectors
Nonspecular diffraction
Numerical techniques
Phase velocity
Specular diffraction
Electromagnetic wave diffraction
spellingShingle Grating
Negative phase velocity
Nonspecular diffraction
Numerical techniques
Specular diffraction
Surface waves
Boundary value problems
Dielectric materials
Diffraction gratings
Maxwell equations
Surface waves
Vectors
Nonspecular diffraction
Numerical techniques
Phase velocity
Specular diffraction
Electromagnetic wave diffraction
Planewave diffraction by gratings made of isotropic negative phase-velocity materials
topic_facet Grating
Negative phase velocity
Nonspecular diffraction
Numerical techniques
Specular diffraction
Surface waves
Boundary value problems
Dielectric materials
Diffraction gratings
Maxwell equations
Surface waves
Vectors
Nonspecular diffraction
Numerical techniques
Phase velocity
Specular diffraction
Electromagnetic wave diffraction
description We analyze the diffraction of a plane wave by a diffraction (surface-relief) grating made of an Isotropic negative phase-velocity material. Three different approaches are employed, and the results are compared with those for conventional (i.e., positive phase-velocity) materials. Resonant excitation of surface waves on the new types of gratings is examined.
title Planewave diffraction by gratings made of isotropic negative phase-velocity materials
title_short Planewave diffraction by gratings made of isotropic negative phase-velocity materials
title_full Planewave diffraction by gratings made of isotropic negative phase-velocity materials
title_fullStr Planewave diffraction by gratings made of isotropic negative phase-velocity materials
title_full_unstemmed Planewave diffraction by gratings made of isotropic negative phase-velocity materials
title_sort planewave diffraction by gratings made of isotropic negative phase-velocity materials
publishDate 2004
url https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_0277786X_v5508_n_p268_Depine
http://hdl.handle.net/20.500.12110/paper_0277786X_v5508_n_p268_Depine
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