Multifunctional light beam control device by stimuli-responsive liquid crystal micro-grating structures

There is an increasing need to control light phase with tailored precision via simple means in both fundamental science and industry. One of the best candidates to achieve this goal are electro-optical materials. In this work, a novel technique to modulate the spatial phase profile of a propagating...

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Published inScientific reports Vol. 10; no. 1; p. 13806
Main Authors Algorri, J. F., Morawiak, P., Zografopoulos, D. C., Bennis, N., Spadlo, A., Rodríguez-Cobo, L., Jaroszewicz, L. R., Sánchez-Pena, J. M., López-Higuera, J. M.
Format Journal Article
LanguageEnglish
Published London Nature Publishing Group UK 14.08.2020
Nature Publishing Group
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Summary:There is an increasing need to control light phase with tailored precision via simple means in both fundamental science and industry. One of the best candidates to achieve this goal are electro-optical materials. In this work, a novel technique to modulate the spatial phase profile of a propagating light beam by means of liquid crystals (LC), electro-optically addressed by indium-tin oxide (ITO) grating microstructures, is proposed and experimentally demonstrated. A planar LC cell is assembled between two perpendicularly placed ITO gratings based on microstructured electrodes. By properly selecting only four voltage sources, we modulate the LC-induced phase profile such that non-diffractive Bessel beams, laser stretching, beam steering, and 2D tunable diffraction gratings are generated. In such a way, the proposed LC-tunable component performs as an all-in-one device with unprecedented characteristics and multiple functionalities. The operation voltages are very low and the aperture is large. Moreover, the device operates with a very simple voltage control scheme and it is lightweight and compact. Apart from the demonstrated functionalities, the proposed technique could open further venues of research in optical phase spatial modulation formats based on electro-optical materials.
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ISSN:2045-2322
2045-2322
DOI:10.1038/s41598-020-70783-8