Multichannel Binary‐Image and Holographic Display Based on Planar Liquid Crystal Devices

Author:

Xie Xin1ORCID,Du Wenjuan2,Shao Zhenglong3,Zhou Yingjie3,Lou Zhilang2,Ji Ruonan1,Wen Dandan1,Wei Bingyan1,Gan Xuetao1,Zhao Jianlin1,Fan Fan3,Tang Dongliang34ORCID

Affiliation:

1. Key Laboratory of Light Field Manipulation and Information Acquisition Ministry of Industry and Information Technology Shaanxi Key Laboratory of Optical Information Technology School of Physical Science and Technology Northwestern Polytechnical University 710129 Xi'an China

2. School of Physics and Optoelectronics Xiangtan University 411105 Xiangtan China

3. Key Laboratory for Micro/Nano Optoelectronic Devices of Ministry of Education & Hunan Provincial Key Laboratory of Low‐Dimensional Structural Physics and Devices, School of Physics and Electronics Hunan University 410082 Changsha China

4. Greater Bay Area Institute for Innovation Hunan University 511300 Guangzhou China

Abstract

AbstractPlanar liquid crystal (LC) optics has attracted increasing attention with the development of photoalignment technology. However, current LC devices suffer from single optical manipulation, which hinders the implementation of the device's multifunctionality and light integration. Here, combining the orientation degeneracy and rotation multiplexing scheme, several LC elements are proposed for multichannel image displays through a simple single‐cell design. The first design shows the gray‐image multiplexing at the sample surface, which displays two independent binary gray images without crosstalk in two information channels. The second design shows that the amplitude and phase of incident light can be manipulated separately, and a far‐field holographic image is further integrated into the LC device to achieve tri‐channel display. Both the Fraunhofer and Fresnel holograms are considered, and the experiment results agree well with the theoretical designs. Furthermore, the electrical tunability of the LC molecule is demonstrated, and the images can be turned on and off by controlling the voltage. The proposed strategy significantly increases the information capacity without the cost of complex design and fabrication and has promising prospects in multichannel image display, optical anticounterfeiting, encryption, etc.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

Subject

Condensed Matter Physics,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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