Polarization diffractive elements displayed with liquid crystal spatial light modulators

In this work we present the analysis of polarization diffractive elements, and its experimental realization with a twisted nematic liquid-crystal spatial light modulator. We analyze different spatially variant polarization diffractive elements by an extension of the scalar Fourier optics theory to a...

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Autor principal: Moreno, I.
Otros Autores: Iemmi, Claudio César, Vargas, A., Campos, J., Yzuel, M.J
Formato: Acta de conferencia Capítulo de libro
Lenguaje:Inglés
Publicado: 2006
Acceso en línea:Registro en Scopus
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100 1 |a Moreno, I. 
245 1 0 |a Polarization diffractive elements displayed with liquid crystal spatial light modulators 
260 |c 2006 
270 1 0 |m Moreno, I.; Departamento de Ciencia y Tecnología de Materiales, Univ. Miguel Hernández de ElcheSpain 
504 |a Bomzom, Z., Kleiner, V., Hasman, E., Computer-generated space-variant polarization elements with subwavelength metal stripes (2001) Opt. Lett., 26 (1), pp. 33-35 
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504 |a Zeitner, U., Schnabel, B., Kley, E.-B., Wyrowski, F., Polarization multiplexing of diffractive elements with metalstripe grating pixels (1999) Appl. Opt., 38 (11), pp. 2177-2181 
504 |a Stadler, M., Schadt, M., Linearly polarized light with axial symmetry generated by liquid-crystal polarization converters (1999) Opt. Lett., 21 (23), pp. 1948-1950 
504 |a Davis, J.A., McNamara, D.E., Cottrell, D.M., Sonehara, T., Two-dimensional polarization encoding with a phase-only liquid-crystal spatial light modulator (2000) Appl. Opt, 39 (10), pp. 1549-1554 
504 |a Gori, F., Measuring Stokes parameters by means of a polarization grating (1999) Opt. Lett., 24 (9), pp. 584-586 
504 |a Tervo, J., Turunen, J., Paraxial-domain diffractive elements with 100% efficiency based on polarization gratings (2000) Opt. Lett., 25 (11), pp. 785-787 
504 |a Honkanen, M., Kettunen, V., Terno, J., Turunen, J., Fourier array illuminators with 100% efficiency: Analytical Jones-matrix contruction (2000) J. Mod. Opt., 47 (13), pp. 2351-2359 
504 |a Davis, J.A., Adachi, J., Fernández-Pousa, C.R., Moreno, I., Polarization beam splitters using polarization diffraction gratings (2001) Opt. Lett., 26 (9), pp. 587-589 
504 |a Fernández-Pousa, C.R., Moreno, I., Davis, J.A., Adachi, J., Polarizing diffraction-grating triplicators (2001) Opt. Lett., 26 (21), pp. 1651-1653 
504 |a Davis, J.A., Evans, G.E., Moreno, I., Polaization-multiplexed diffractive optical elements with liquid crystal displays (2005) J. Opt., 44, pp. 4049-4052 
504 |a Gori, F., Matrix treatment for partially polarized, partially coherent beams (1998) Opt. Lett., 23 (4), pp. 241-243 
504 |a Gori, F., Santarsiero, M., Borghi, R., Guattari, G., The irradiance of partially polarized beams in scalar treatment (1999) Opt. Commun., 163, pp. 159-163 
504 |a Davis, J.A., Escalera, J.C., Campos, J., Marquez, A., Yzuel, M.J., Iemmi, C., Programmable axial apodizing and hyperresolving amplitude filters with a liquid-crystal spatial light modulator (1999) Opt. Lett., 24, pp. 628-630 
504 |a Marquez, A., Iemmi, C., Escalera, J.C., Campos, J., Ledesma, S., Davis, J.A., Yzuel, M.J., Amplitude apodizers encoded onto Fresnel lenses implemented on a phase-only spatial light modulator (2001) Appl. Opt., 40, pp. 2316-2322 
504 |a Marquez, A., Iemmi, C., Campos, J., Escalera, J.C., Yzuel, M.J., Programmable apodizer to compensate chromatic aberration effects using a liquid crystal spatial light modulator (2005) Opt. Exp., 13, pp. 716-730 
504 |a Ghosh, A., Murata, K., Chakraborty, A.K., Frequency-response characteristics of a perfect lens by polarizing devices (1988) J. Opt. Soc. Am. A, 5, pp. 277-284 
504 |a Bhattacharya, K., Chakraborty, A.K., Ghosh, A., Simulation of effects of phase and amplitude coatings on the lens aperture with polarization masks (1994) J. Opt. Soc. Am. A, 11, pp. 586-592 
504 |a Unno, Y., Distorted wave front produced by a high-resolution projection optical system having symmetric birefringence (1998) Appl. Opt., 37, pp. 7241-7247 
504 |a Xiao, F., Yuan, J., Wang, G., Xu, Z., Tunable phase-only optical filters with a uniaxial crystal (2004) Appl. Opt., 43, pp. 3415-3419 
504 |a Cooper, I.J., Roy, M., Sheppard, C.J.R., Focusing of pseudoradial polarized beams (2005) Opt. Exp., 13, pp. 1066-1071 
504 |a Moreno, I., Yzuel, M.J., Campos, J., Vargas, A., Jones matrix treatment for polarization Fourier optics (2004) J. Mod. Opt., 51, pp. 2031-2038 
504 |a Goodman, J.W., (1996) Introduction to Fourier Optics, 2nd Edition, , McGraw-Hill 
504 |a Marquez, A., Iemmi, C., Moreno, I., Davis, J.A., Campos, J., Yzuel, M.J., Quantitative prediction of the modulation behavior of twisted nematic liquid crystal displays (2001) Opt. Eng., 40, pp. 2558-2564A4 - SPIE Eurpoe; Conseil General DuBas-Rhin, France; Communaute Urbaine de Strasbourg, France; Region Alsace, France; Alsace Development Agency, France 
506 |2 openaire  |e Política editorial 
520 3 |a In this work we present the analysis of polarization diffractive elements, and its experimental realization with a twisted nematic liquid-crystal spatial light modulator. We analyze different spatially variant polarization diffractive elements by an extension of the scalar Fourier optics theory to a vectorial theory based on the Jones matrix formalism. Both the intensity and the local state of polarization distributions in the Fraunhoffer approximation are analyzed. We also present the extension of this formalism to study a polarization / diffractive element with rotational symmetry and we consider a binary polarization pupil filter for an optical system. We describe both the transversal plane and the axial polarization behavior. We show how the response of the optical system can be easily changed from apodizing to superresolving behavior, through the orientation of an analyzer placed behind the pupil. Finally we present the experimental realization of these polarization diffractive elements with a twisted nematic liquid crystal spatial light modulator (TN-SLM). We discuss the required polarization configuration of the display and experimentally demonstrate the polarization / diffraction properties of binary polarization diffractive elements. Experimental realization of the proposed binary polarization pupil filter is also demonstrated by placing the liquid crystal spatial light modulator at the exit pupil of an optical system.  |l eng 
593 |a Departamento de Ciencia y Tecnología de Materiales, Univ. Miguel Hernández de Elche, Spain 
593 |a Departamento de Física, Fac. Ciencias Exactas y Naturales, Univ. Buenos Aires, Argentina 
593 |a Departamento de Ciencias Físicas, Universidad de la Frontera, Temuco, Chile 
593 |a Departamento de Física, Universidad Aut́noma de Barcelona, Bellaterra, Spain 
690 1 0 |a FOURIER OPTICS 
690 1 0 |a JONES MATRICES 
690 1 0 |a LIQUID CRYSTAL DISPLAY 
690 1 0 |a OPTICAL DIFFRACTIVE ELEMENTS 
690 1 0 |a POLARIZATION 
690 1 0 |a APPROXIMATION THEORY 
690 1 0 |a FOURIER OPTICS 
690 1 0 |a LIGHT MODULATION 
690 1 0 |a LIQUID CRYSTAL DISPLAYS 
690 1 0 |a OPTICAL PROPERTIES 
690 1 0 |a POLARIZATION 
690 1 0 |a JONES MATRICES 
690 1 0 |a OPTICAL DIFFRACTIVE ELEMENTS 
690 1 0 |a PUPIL FILTERS 
690 1 0 |a DIFFRACTIVE OPTICS 
700 1 |a Iemmi, Claudio César 
700 1 |a Vargas, A. 
700 1 |a Campos, J. 
700 1 |a Yzuel, M.J. 
711 2 |c Strasbourg  |d 3 April 2006 through 4 April 2006  |g Código de la conferencia: 67965 
773 0 |d 2006  |g v. 6187  |p Proc SPIE Int Soc Opt Eng  |n Proceedings of SPIE - The International Society for Optical Engineering  |x 0277786X  |z 0819462438  |z 9780819462435  |t Photon Management II 
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