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用于增强现实和虚拟现实显示的先进液晶器件:原理与应用

Advanced liquid crystal devices for augmented reality and virtual reality displays: principles and applications.

作者信息

Yin Kun, Hsiang En-Lin, Zou Junyu, Li Yannanqi, Yang Zhiyong, Yang Qian, Lai Po-Cheng, Lin Chih-Lung, Wu Shin-Tson

机构信息

College of Optics and Photonics, University of Central Florida, Orlando, FL, 32816, USA.

出版信息

Light Sci Appl. 2022 May 30;11(1):161. doi: 10.1038/s41377-022-00851-3.

Abstract

Liquid crystal displays (LCDs) and photonic devices play a pivotal role to augmented reality (AR) and virtual reality (VR). The recently emerging high-dynamic-range (HDR) mini-LED backlit LCDs significantly boost the image quality and brightness and reduce the power consumption for VR displays. Such a light engine is particularly attractive for compensating the optical loss of pancake structure to achieve compact and lightweight VR headsets. On the other hand, high-resolution-density, and high-brightness liquid-crystal-on-silicon (LCoS) is a promising image source for the see-through AR displays, especially under high ambient lighting conditions. Meanwhile, the high-speed LCoS spatial light modulators open a new door for holographic displays and focal surface displays. Finally, the ultrathin planar diffractive LC optical elements, such as geometric phase LC grating and lens, have found useful applications in AR and VR for enhancing resolution, widening field-of-view, suppressing chromatic aberrations, creating multiplanes to overcome the vergence-accommodation conflict, and dynamic pupil steering to achieve gaze-matched Maxwellian displays, just to name a few. The operation principles, potential applications, and future challenges of these advanced LC devices will be discussed.

摘要

液晶显示器(LCD)和光子器件在增强现实(AR)和虚拟现实(VR)中起着关键作用。最近出现的高动态范围(HDR)Mini-LED背光LCD显著提升了图像质量和亮度,并降低了VR显示器的功耗。这种光引擎对于补偿薄饼结构的光学损耗以实现紧凑轻便的VR头显尤为有吸引力。另一方面,高分辨率密度和高亮度的硅基液晶(LCoS)是透视式AR显示器的一种很有前景的图像源,特别是在高环境光照条件下。同时,高速LCoS空间光调制器为全息显示和焦平面显示打开了一扇新的大门。最后,超薄平面衍射液晶光学元件,如几何相位液晶光栅和透镜,已在AR和VR中得到了一些有用的应用,包括提高分辨率、拓宽视场、抑制色差、创建多平面以克服辐辏调节冲突以及动态瞳孔转向以实现凝视匹配的麦克斯韦显示等等。将讨论这些先进液晶器件的工作原理、潜在应用和未来挑战。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6e6b/9151772/b2fc4873b82d/41377_2022_851_Fig1_HTML.jpg

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