Method for structuring a non-metal omnidirectional...

G - Physics – 02 – B

Patent

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G02B 27/00 (2006.01) G02B 5/08 (2006.01) G02B 6/122 (2006.01)

Patent

CA 2747113

The present invention provides a method for structuring an omnidirectional non-metal mirror for any predetermined wavelength or range of wavelengths, including the following steps: A) defining a structure comprising at least two layers of different non-metal materials, with an elementary matrix associated to each layer, including physical parameters of the layer and parameters of the light passing through said layer; B) generating another structure comprising N layers, from a sequence of substitutions .sigma. applied n times to the structure defined in step A), with a matrix S j associated to each layer j (j from 1 to N), including the physical parameters of the layer in question and the characteristics of the light passing through said layer; C) based on No matrices S j and using a technique of recurrence by blocks defined by the sequence of substitutions .sigma., calculating the matrix MN representing the structure generated in step B), the transmission coefficient T then being calculated for matrix MN; D) determining whether the resulting transmission coefficient T enables the structure defined in step B) to be qualified as a mirror.

La présente invention propose un procédé de structuration d'un miroir non métallique omnidirectionnei pour une longueur d'onde ou une gamme de longueur d'onde quelconque mais prédéterminée, comprenant les étapes consistant à : A) définir une structure comportant au moins deux couches de matériaux non métalliques différents, à chacune desquelles on associe une matrice élémentaire intégrant des paramètres physiques de la couche et des paramètres de la lumière traversant ladite couche; B) engendrer une autre structure comportant N couches, à partir d'une suite substitutive s appliquée n fois à la structure définie à l'étape A), à laquelle on associe à chaque couche j (j de 1 à N), une matrice Sj intégrant les paramètres physiques de la couche considérée et les caractéristiques de la lumière la traversant; C) à partir des N matrices Sj et en utilisant une technique de récurrence par blocs définis par la suite substitutive s, calculer la matrice MN représentative de la structure engendrée à l'étape B), matrice MN dont on calcule, ensuite, le coefficient de transmission T; D) déterminer si le coefficient de transmission T obtenu permet de qualifier la structure définie à l'étape B) en tant que miroir.

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