Multifunctional holographic liquid crystal elements based on polarization, wavelength and position multiplexing method
Planar Liquid Crystal Devices|更新时间:2024-05-29
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Multifunctional holographic liquid crystal elements based on polarization, wavelength and position multiplexing method
“A new breakthrough has been made in the field of liquid crystal displays, and a liquid crystal holographic display device based on polarization, position, and wavelength parameter multiplexing has been successfully developed. The research team calculated multiple holograms using the GS algorithm and utilized the principle of holographic superposition to achieve reuse. The experimental results show that the device can display holographic images at multiple polarizations, positions, and wavelengths, and can maintain clear display even in a bent state. In addition, the study also proposed a dynamically adjustable holographic liquid crystal cell with electrical tunability, which can achieve image on/off state switching in the visible light band. This innovative strategy opens up new paths for low-cost and easy to design multi-channel holographic liquid crystal devices, demonstrating broad potential in fields such as flexible display, imaging multiplexing, and information storage.”
Chinese Journal of Liquid Crystals and DisplaysVol. 39, Issue 5, Pages: 610-619(2024)
作者机构:
湖南大学 物理与微电子科学学院, 湖南 长沙 410082
作者简介:
基金信息:
National Natural Science Foundation of China(61605046)
ZHOU Yingjie, ZENG Tibin, FAN Fan. Multifunctional holographic liquid crystal elements based on polarization, wavelength and position multiplexing method[J]. Chinese journal of liquid crystals and displays, 2024, 39(5): 610-619.
DOI:
ZHOU Yingjie, ZENG Tibin, FAN Fan. Multifunctional holographic liquid crystal elements based on polarization, wavelength and position multiplexing method[J]. Chinese journal of liquid crystals and displays, 2024, 39(5): 610-619. DOI: 10.37188/CJLCD.2024-0060.
Multifunctional holographic liquid crystal elements based on polarization, wavelength and position multiplexing method