近统一传输光学眼动追踪的无彩虹导模共振超表面(会议报告)

Jung-Hwan Song, S. Kim, J. Groep, M. Brongersma
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引用次数: 0

摘要

眼动追踪已经成为心理学、神经病学、眼科学等广泛研究领域中不可或缺的分析方法。增强现实的最新发展正在推动更紧凑、透明的眼动追踪器与头戴式显示器或平视显示器兼容。斜半镜和全息波导满足这些标准,目前已广泛应用于眼控显示、自动驾驶和近眼显示。然而,这些仍然需要庞大的补充光学元件,透明度很差,并且由于可见光谱中的非零衍射而产生彩虹图像。在这里,我们展示了超薄的,无彩虹的眼动追踪衍射光学元件基于导模共振,显示近统一传输。它由一个200纳米厚的Si3N4板波导夹在石英衬底和一个100纳米厚的SiO2封盖层之间组成,该封盖层设计用于整个可见光谱的高透射率(>90%)。在平板波导和封盖层之间的界面处插入3nm厚的Si光栅层,在固定的入射角和偏振下,在特定波长的平板波导中发射高质量(Q~ 2000)的漏导模式,使我们能够有效地(13%)表征870 nm处的谐振光衍射。另一方面,在可见光中,由于Si的吸收,导模共振变弱,导致产生彩虹的衍射被强烈抑制,效率低于0.1%。通过将单个网络摄像头定位在近掠角,对应于输出衍射阶在870 nm处,获得了人工眼睛的全前像。我们的设备为显示器和光学开关应用的超紧凑、透明和非突发性成像开辟了一条有前途的道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rainbow-free guided-mode resonance metasurfaces for optical eye-tracking with near-unity transmission (Conference Presentation)
Eye tracking has been an indispensable analysis method in a wide range of research fields, including Psychology, Neurology, and ophthalmology. Recent developments in augmented reality are pushing for more compact, transparent eye trackers compatible with head-mounted display or heads-up display. Oblique half-mirror and holographic waveguide satisfy these criteria and now widely used in eye-controlled displays, auto-driving, and near-to-eye displays. However, these still require bulky supplementary optics, are poorly transparent, and produce rainbow images due to non-zero diffraction in the visible spectrum. Here, we demonstrate ultra-thin, rainbow-free eye tracking diffractive optical elements based on guided mode resonance that exhibits near-unity transmission. It consists of a 200-nm-thick Si3N4 slab waveguide sandwiched between a quartz substrate and a 100-nm-thick SiO2 capping layer designed for high transmission (>90%) over the whole visible spectrum. The insertion of 3-nm-thick Si grating layer at the interface between the slab waveguide and capping layer launches high-quality (Q~2,000), leaky guided modes in the slab waveguide at specific wavelengths for a fixed incident angle and polarization, which enables us to efficiently (13%) characterize resonant light diffraction at 870 nm. In the visible, on the other hand, the guided mode resonance becomes weak due to Si absorption, resulting in strongly suppressed rainbow-producing diffractions below 0.1% efficiency. By locating a single webcam at near-grazing angle, corresponding to the output diffracted order at 870 nm, the full anterior images of an artificial eyes are obtained. Our device opens a promising route toward ultra-compact, transparent, and non-obtrusive imaging for displays and optical switching applications.
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