Comparison between the differential and integral methods used to solve the grating problem in the HH∥ase
The usual differential method for solving the grating problem in the H∥ case is shown to be unable to predict the efficiencies of blazed gratings in a reliable manner. Its predictions are compared with those obtained using the integral method developed by Maystre, a reliable method that has shown it...
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1987
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003 | AR-BaUEN | ||
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024 | 7 | |2 scopus |a 2-s2.0-84893998161 | |
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100 | 1 | |a Depine, Ricardo Angel | |
245 | 1 | 0 | |a Comparison between the differential and integral methods used to solve the grating problem in the HH∥ase |
260 | |c 1987 | ||
504 | |a Cerutti-Maori, G., Petit, R., Cadilhac, M., Etude numerique du champ diffracte par un reseau (1969) C. R. Acad. Sci. (Paris), 268 B, pp. 1060-1063 | ||
504 | |a Neviere, N., Vincent, P., Petit, R., Sur la theorie du reseau conducteur et ses applications a l'optique (1974) Nouv. Rev. Opt, 5, pp. 65-77 | ||
504 | |a Vincent, P., Differential methods (1980) Electromagnetic Theory of Gratings, 22, p. 101. , of Topics in Current Physics, R. Petit, ed., (Springer-Verlag, Berlin) | ||
504 | |a Depine, R.A., Simon, J.M., Diffraction grating efficiencies: An exact differential algorithm valid for high conductivities (1983) Opt. Acta, 30, pp. 1273-1286 | ||
504 | |a Simon, J.M., Depine, R.A., Diffraction grating efficiencies: Differential methods for H|| case (1984) Optik, 67, pp. 145-153 | ||
504 | |a Maystre, D., A new general integral theory for dielectric coated gratings (1978) J. Opt. Soc. Am, 68, pp. 490-495 | ||
504 | |a Maystre, D., Integral methods (1980) Electromagnetic Theory of Gratings, 22, p. 63. , of Topics in Current Physics, R. Petit, ed., (Springer-Verlag, Berlin) | ||
504 | |a Maystre, D., Neviere, M., Petit, R., Experimental verifications and applications of the theory (1980) Electromagnetic Theory of Gratings, 22, p. 159. , of Topics in Current Physics, R. Petit, ed., (Springer-Verlag, Berlin) | ||
506 | |2 openaire |e Política editorial | ||
520 | 3 | |a The usual differential method for solving the grating problem in the H∥ case is shown to be unable to predict the efficiencies of blazed gratings in a reliable manner. Its predictions are compared with those obtained using the integral method developed by Maystre, a reliable method that has shown its validity over a wide range of applications. The efficiencies of sinusoidal gratings as a function of angle of incidence are calculated by both methods for two values of the groove-height-to-period ratio. For 0.05 (low modulations) both formalisms yield similar results, but for 0.2 only a qualitative agreement is observed. The differential method is shown to involve an approximation valid only for low-modulated surfaces, a fact that accounts for the observed discrepancies. As a self-consistency test, the fulfillment of the electromagnetic boundary conditions is checked by calculating the jumps of the field components, which should be continuous at the grating surface. © 1987 Optical Society of America. |l eng | |
593 | |a Departamento de Fisica, Facultad de Ciencics Exactas y Naturales, Laboratorio de Optica, Universidad de Buenos Aires, Buenos Aires, 1428, Argentina | ||
700 | 1 | |a Simon, J.M. | |
773 | 0 | |d 1987 |g v. 4 |h pp. 834-838 |k n. 5 |p J Opt Soc Am A |x 10847529 |t Journal of the Optical Society of America A: Optics and Image Science, and Vision | |
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856 | 4 | 0 | |u https://doi.org/10.1364/JOSAA.4.000834 |x doi |y DOI |
856 | 4 | 0 | |u https://hdl.handle.net/20.500.12110/paper_10847529_v4_n5_p834_Depine |x handle |y Handle |
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