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基于偏振无关超表面透镜与微型发光二极管集成的增强现实系统。

Augmented reality system based on the integration of polarization-independent metalens and micro-LEDs.

作者信息

Li Sheng-Hui, Sun Chi, Tang Pei-Yu, Liao Jui-Hsun, Hsieh Yu-Hsiang, Fung Bo-Heui, Fang Yen-Hsiang, Kuo Wei-Hung, Wu Ming-Hsien, Chang Hsueh-Chih, J Su Guo-Dung

出版信息

Opt Express. 2024 Mar 25;32(7):11463-11473. doi: 10.1364/OE.517356.

Abstract

Augmented reality (AR), a technology that superimposes virtual information onto a user's direct view of real-world scenes, is considered one of the next-generation display technologies and has been attracting considerable attention. Here, we propose a flat optic AR system that synergistically integrates a polarization-independent metalens with micro light-emitting diodes (LEDs). A key component is a meticulously designed metalens with a numerical aperture of 0.25, providing a simulated focusing efficiency of approximately 76.5% at a wavelength of 532 nm. Furthermore, the laser measurement system substantiates that the fabricated metalens achieves a focusing efficiency of 70.8%. By exploiting the reversibility of light characteristics, the metalens transforms the divergent light from green micro-LEDs into a collimated beam that passes through the pupil and images on the retina. Monochromatic pixels with a size of 5×5 µm and a pitch of 10 µm can be distinctly resolved with a power efficiency of 50%. This work illustrates the feasibility of integrating the metalens with microdisplays, realizing a high-efficiency AR device without the need for additional optical components and showcasing great potential for the development of near-eye display applications.

摘要

增强现实(AR)是一种将虚拟信息叠加到用户对现实世界场景的直接视野上的技术,被认为是下一代显示技术之一,并一直备受关注。在此,我们提出一种平面光学AR系统,该系统将偏振无关的超构透镜与微型发光二极管(LED)协同集成。一个关键组件是精心设计的超构透镜,其数值孔径为0.25,在波长532 nm处提供约76.5%的模拟聚焦效率。此外,激光测量系统证实,制造的超构透镜实现了70.8%的聚焦效率。通过利用光特性的可逆性,超构透镜将来自绿色微型LED的发散光转换为准直光束,该光束穿过瞳孔并在视网膜上成像。尺寸为5×5 µm且间距为10 µm的单色像素能够以50%的功率效率清晰分辨。这项工作说明了将超构透镜与微型显示器集成的可行性,实现了无需额外光学组件的高效AR设备,并展示了近眼显示应用开发的巨大潜力。

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