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Analysis of multiple internal reflections in a parallel aligned liquid crystal on silicon SLM
Author(s) -
José Luis Martínez,
Ignacio Moreno,
Marı́a del Mar Sánchez-López,
Asticio Vargas,
Pascuala Garcı́a-Martı́nez
Publication year - 2014
Publication title -
optics express
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.394
H-Index - 271
ISSN - 1094-4087
DOI - 10.1364/oe.22.025866
Subject(s) - liquid crystal on silicon , optics , materials science , phase modulation , modulation (music) , total internal reflection , diffraction , liquid crystal , wavelength , grating , optical modulator , diffraction efficiency , amplitude modulation , reflection (computer programming) , diffraction grating , silicon , phase (matter) , frequency modulation , optoelectronics , physics , telecommunications , bandwidth (computing) , quantum mechanics , computer science , phase noise , acoustics , programming language
Multiple internal reflection effects on the optical modulation of a commercial reflective parallel-aligned liquid-crystal on silicon (PAL-LCoS) spatial light modulator (SLM) are analyzed. The display is illuminated with different wavelengths and different angles of incidence. Non-negligible Fabry-Perot (FP) effect is observed due to the sandwiched LC layer structure. A simplified physical model that quantitatively accounts for the observed phenomena is proposed. It is shown how the expected pure phase modulation response is substantially modified in the following aspects: 1) a coupled amplitude modulation, 2) a non-linear behavior of the phase modulation, 3) some amount of unmodulated light, and 4) a reduction of the effective phase modulation as the angle of incidence increases. Finally, it is shown that multiple reflections can be useful since the effect of a displayed diffraction grating is doubled on a beam that is reflected twice through the LC layer, thus rendering gratings with doubled phase modulation depth.

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