Parametric coordinate transformations for surface relief gratings

We present a new coordinate transformation that extends the applicability of the differential method for grating analysis proposed by Chandezon et al. (1982, J. Opt. Soc. Am. A 72, 839). The new transformation is particularly well suited for dealing with grating profiles given by parametric equation...

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Detalles Bibliográficos
Autor principal: Inchaussandague, M.E
Otros Autores: Depine, Ricardo Angel
Formato: Acta de conferencia Capítulo de libro
Lenguaje:Inglés
Publicado: 2001
Acceso en línea:Registro en Scopus
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Registro en la Biblioteca Digital
Aporte de:Registro referencial: Solicitar el recurso aquí
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100 1 |a Inchaussandague, M.E. 
245 1 0 |a Parametric coordinate transformations for surface relief gratings 
260 |c 2001 
270 1 0 |m Inchaussandague, M.E.; Grupo de Electromagnetismo Aplicado, Pab. I - Ciudad Universitaria, Universidad de Buenos Aires, Buenos Aires, Argentina; email: mei@df.uba.ar 
504 |a Nevière, M., Cadilhac, M., Petit, R., Applications of conformal mappings to the diffraction of electromagnetic waves by a grating (1973) IEEE Trans. Antennas Propagat., AP 21, pp. 37-45 
504 |a Nevière, M., Cadilhac, M., Sur une nouvelle formulation du probleme de la diffraction d'une onde plane par un reseau infiniment conducteur-cas general (1971) Opt. Commun., 3, pp. 379-383 
504 |a Depine, R.A., Simon, J.M., Diffraction grating efficiencies: Conformal mapping method for a good real conductor (1982) Opt. Acta, 29, pp. 1459-1473 
504 |a Depine, R.A., Simon, J.M., Surface impedance boundary condition for metallic diffraction gratings in the optical and infrared range (1983) Opt. Acta, 30, pp. 313-332 
504 |a Depine, R.A., Valencia, C.I., Diffraction from corrugated dielectric gratings: General case of oblique incidence (1992) J. Mod. Opt., 39, pp. 2089-2112 
504 |a Depine, R.A., Inchaussandague, M.E., Corrugated diffraction gratings in uniaxial crystals (1994) J. Opt. Soc. Am A, 11, pp. 173-180 
504 |a Inchaussandague, M.E., Depine, R.A., Diffraction gratings in uniaxial crystals with arbitrary orientation of the optic axis (1995) J. Opt. Soc. Am A, 12, pp. 1261-1270 
504 |a Chandezon, J., Dupuis, M., Cornet, G., Maystre, D., Multicoated gratings: A differential formalism applicable in the entire optical region (1982) J. Opt. Soc. Am. A, 72, pp. 839-846 
504 |a Popov, E., Mashev, L., Convergence of Rayleigh-Fourier method and rigorous differential method for relief diffraction gratings (1986) Opt. Acta, 33, pp. 593-605 
504 |a Popov, E., Masher, L., Convergence of Rayleigh-Fourier method and rigorous differential method for relief diffraction gratings: Non sinusoidal profile (1987) Opt. Acta, 34, pp. 155-158 
504 |a Li, L., Multilayer-coated diffraction gratings: Differential method of Chandezon et al. revisited (1994) J. Opt. Soc. Am. A, 11, pp. 2816-2828 
504 |a Popov, E., Masher, L., Conical diffraction mounting generalization of a rigorous differential method (1986) J. Opt. (Paris), 17, pp. 175-180 
504 |a Elston, S., Bryan-Brown, G., Sambles, J., Polarization conversion from diffraction gratings (1991) Phys. Rev. B, 44, pp. 6393-6400 
504 |a Harris, J.B., Priest, T.W., Sambles, J.R., Differential formalism for multilayer diffraction gratings made with uniaxial materials (1995) J. Opt. Soc. Am. A, 12, pp. 1965-1973 
504 |a Harris, J.B., Priest, T.W., Wood, E.L., Sambles, J.R., Conical diffraction for multicoated gratings containing uniaxial materials (1996) J. Opt. Soc. Am. A, 13, pp. 803-810 
504 |a Inchaussandague, M.E., Depine, R.A., Polarization conversion from diffraction gratings made of uniaxial crystals (1996) Phys. Rev. E, 54, pp. 2899-2911 
504 |a Inchanssandague, M.E., Depine, R.A., Rigorous vector theory for diffraction from gratings made of biaxial crystals (1997) J. Mod. Opt., 44, pp. 1-27 
504 |a Granet, G., Analysis of diffraction by crossed gratings using a non-orthogonal coordinate system (1995) Pure Appl. Optics, 4, pp. 777-793 
504 |a Plumey, J.P., Guizal, B., Chandezon, J., Coordinate transformation method as applied to asymmetric gratings with vertical facets (1997) J. Opt. Soc. Am. A, 14, pp. 610-617 
504 |a Li, L., Chandezon, J., Improvement of the coordinate transformation method for surface-relief gratings with sharp edges (1996) J. Opt. Soc. Am. A, 13, pp. 2247-2255 
504 |a Priest, T.W., Harris, J.B., Wanstall, N.P., Sambles, J.R., Optical response of blazed and overhanging gratings using oblique Chandezon transformations (1997) J. Mod. Opt., 44, pp. 1073-1080 
504 |a Kleemann, B.H., Mitreiter, A., Wyrowski, F., Integral equation method with parametrization of grating profile. Theory and experiment (1996) J. Mod. Optics, 45, pp. 1323-1349A4 - SPIE; Laseroptics SA (Argentina); Optical Society of America; International Commission for Optics; Spectra-Physics GmbH (Germany) 
506 |2 openaire  |e Política editorial 
520 3 |a We present a new coordinate transformation that extends the applicability of the differential method for grating analysis proposed by Chandezon et al. (1982, J. Opt. Soc. Am. A 72, 839). The new transformation is particularly well suited for dealing with grating profiles given by parametric equations. It allows us to treat rather arbitrary profiles, which cannot be straightforwardly modeled with the conventional differential method.  |l eng 
593 |a Grupo de Electromagnetismo Aplicado, Pab. I - Ciudad Universitaria, Universidad de Buenos Aires, Buenos Aires, Argentina 
690 1 0 |a COORDINATE TRANSFORMATION 
690 1 0 |a DIFFRACTION GRATINGS 
690 1 0 |a PARAMETRIC EQUATIONS 
690 1 0 |a BOUNDARY CONDITIONS 
690 1 0 |a MATHEMATICAL TRANSFORMATIONS 
690 1 0 |a MAXWELL EQUATIONS 
690 1 0 |a SURFACE PROPERTIES 
690 1 0 |a COORDINATE TRANSFORMATIONS 
690 1 0 |a DIFFRACTION GRATINGS 
700 1 |a Depine, Ricardo Angel 
711 2 |c Tandil  |d 3 September 2001 through 7 September 2001  |g Código de la conferencia: 59919 
773 0 |d 2001  |g v. 4419  |h pp. 776-779  |p Proc SPIE Int Soc Opt Eng  |n Proceedings of SPIE - The International Society for Optical Engineering  |x 0277786X  |t 4th Iberoamerican Meeting on Optics and 7th Latin American Meeting on Optics, Lasers, and Their Applications 
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