Li Ziyin, Gao Chen, Li Haifeng, Wu Rengmao, Liu Xu
Appl Opt. 2024 Apr 1;63(10):2494-2502. doi: 10.1364/AO.515428.
Augmented reality (AR) near-eye displays have significantly progressed due to advances in nanostructure fabrication. However, for diffractive waveguide AR displays requiring exit pupil expansion, the angular uniformity of each exit pupil position still needs to improve. In this paper, an angular uniformity improvement method based on region geometry optimization is proposed. This optimization method essentially introduces the interaction number of the light with the grating as one of the variables to manipulate the energy distribution. This distribution is obtained by the rigorous coupled wave analysis (RCWA) method and ray tracing process and is further optimized by a multi-objective genetic algorithm. A model is built, and the feasibility of the proposed method is verified. The diffractive waveguide system has a 10 ×10 exit pupil size at the eye relief of 25 mm and a field of view (FOV) of 21×12. After the optimization, the overall optical efficiency of the central field and the angular uniformity at the center exit pupil position increased from 0.9% and 66% to 3.1% and 80%, respectively.
由于纳米结构制造技术的进步,增强现实(AR)近眼显示器取得了显著进展。然而,对于需要出瞳扩展的衍射波导AR显示器,每个出瞳位置的角度均匀性仍有待提高。本文提出了一种基于区域几何优化的角度均匀性改进方法。这种优化方法本质上引入了光与光栅的相互作用次数作为操纵能量分布的变量之一。通过严格耦合波分析(RCWA)方法和光线追踪过程获得这种分布,并通过多目标遗传算法进一步优化。建立了一个模型,并验证了所提方法的可行性。该衍射波导系统在25毫米的眼点距处具有10×10的出瞳尺寸,视场(FOV)为21×12。优化后,中心视场的整体光学效率和中心出瞳位置的角度均匀性分别从0.9%和66%提高到3.1%和80%。