单体金属集成微型发光二极管

IF 2.4 4区 物理与天体物理 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Young-Bin Kim , Jin-Woo Cho , Dukkyu Bae , Sun-Kyung Kim
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引用次数: 0

摘要

金属透镜的特点是不连续的局部相移,在光学上类似于宏观弯曲透镜,但它是平面的,尺寸可缩小到微米级。金属透镜结构紧凑,与半导体制造工艺兼容,有利于将其单片集成到现有的光学设备中。在此,我们报告了金属透镜与微型发光二极管(μ-LED)的集成,从而提高了提取效率和方向性。金属透镜由相同的纳米孔单元组成,每个直径为 150 nm,通过改变这些单元的密度,在特定坐标上诱发所需的局部相移。模拟和实验结果表明,这些易于配置的金属透镜能有效地将平面波聚焦在预定点上,并将发散光源准直在聚焦点上,体现了光学互易性。当与紫外线(λ = 390 nm)60 μm 大小的 μ-LED 集成时,金属透镜显著提高了设备性能,与未图案化的 μ-LED 相比,峰值强度提高了 338%,光束发散度降低了 ±8°。我们相信,具有高亮度、方向性和分辨率的金属膜集成 μ-LED 最适合近眼应用,包括虚拟现实和增强现实显示器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Single-unit metalens integrated micro light-emitting diodes

Single-unit metalens integrated micro light-emitting diodes

Metalenses, characterized by their discontinuous local phase shifts, are optically analogous to macroscopic curved lenses but are flat and scaled down to micrometer dimensions. Their compactness and compatibility with semiconductor manufacturing processes facilitate monolithic integration into existing optical devices. Here, we report on the integration of metalenses with micro light-emitting diodes (μ-LEDs), resulting in enhanced extraction efficiency and directionality. The metalenses were composed of identical nanohole units, each 150 nm in diameter, strategically arranged to induce desired local phase shifts at specific coordinates by varying the density of these units. Both simulated and experimental results demonstrated that these easy-configuration metalenses effectively focused a plane wave at a predetermined spot and collimated a diverging light source at the focal spot, exemplifying optical reciprocity. When integrated with ultraviolet (λ = 390 nm) 60 μm-sized μ-LEDs, the metalenses significantly improved device performance, exhibiting a 338% enhancement in peak intensity and a ±8° reduction in beam divergence compared to an unpatterned μ-LED. We believe that metalens-integrated μ-LEDs with high brightness, directionality, and resolution are optimally suited for near-eye applications, including virtual reality and augmented reality displays.

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来源期刊
Current Applied Physics
Current Applied Physics 物理-材料科学:综合
CiteScore
4.80
自引率
0.00%
发文量
213
审稿时长
33 days
期刊介绍: Current Applied Physics (Curr. Appl. Phys.) is a monthly published international journal covering all the fields of applied science investigating the physics of the advanced materials for future applications. Other areas covered: Experimental and theoretical aspects of advanced materials and devices dealing with synthesis or structural chemistry, physical and electronic properties, photonics, engineering applications, and uniquely pertinent measurement or analytical techniques. Current Applied Physics, published since 2001, covers physics, chemistry and materials science, including bio-materials, with their engineering aspects. It is a truly interdisciplinary journal opening a forum for scientists of all related fields, a unique point of the journal discriminating it from other worldwide and/or Pacific Rim applied physics journals. Regular research papers, letters and review articles with contents meeting the scope of the journal will be considered for publication after peer review. The Journal is owned by the Korean Physical Society.
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