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首页> 外文期刊>ACS nano >Flexible Near-Field Nanopatterning with Ultrathin, Conformal Phase Masks on Nonplanar Substrates for Biomimetic Hierarchical Photonic Structures
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Flexible Near-Field Nanopatterning with Ultrathin, Conformal Phase Masks on Nonplanar Substrates for Biomimetic Hierarchical Photonic Structures

机译:在仿生分层光子结构非平面基板上具有超薄共形相位掩模的柔性近场纳米图案。

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Multilevel hierarchical platforms that combine nano- and microstructures have been intensively explored to mimic superior properties found in nature. However, unless directly replicated from biological samples, desirable multiscale structures have been challenging to efficiently produce to date. Departing from conventional wafer-based technology, new and efficient techniques suitable for fabricating bioinspired structures are highly desired to produce three-dimensional architectures even on nonplanar substrates. Here, we report a facile approach to realize functional nanostructures on uneven microstructured platforms via scalable optical fabrication techniques. The ultrathin form (similar to 3 mu m) of a phase grating composed of poly(vinyl alcohol) makes the material physically flexible and enables full-conformal contact with rough surfaces. The near-field optical effect can be identically generated on highly curved surfaces as a result of superior conformality. Densely packed nanodots with submicron periodicity are uniformly formed on microlens arrays with a radius of curvature that is as low as similar to 28 mu m. Increasing the size of the gratings causes the production area to be successfully expanded by up to 16 in(2). The "nano-on-micro" structures mimicking real compound eyes are transferred to flexible and stretchable substrates by sequential imprinting, facilitating multifunctional optical films applicable to antireflective diffusers for large-area sheet-illumination displays.
机译:结合纳米和微观结构的多层次分层平台已被广泛研究,以模仿自然界中发现的卓越性能。然而,除非直接从生物样品中复制,否则迄今为止,要有效地生产所需的多尺度结构一直是挑战。与传统的基于晶片的技术不同,非常需要适用于制造生物启发结构的新型高效技术,即使在非平面基板上也可以产生三维结构。在这里,我们报告了一种通过可扩展的光学制造技术在不均匀的微结构化平台上实现功能纳米结构的简便方法。由聚乙烯醇组成的相位光栅的超薄形式(大约3微米)使该材料具有物理柔性,并且可以与粗糙表面完全保形地接触。由于出色的保形性,可以在高度弯曲的表面上相同地产生近场光学效果。具有亚微米周期性的密集堆积的纳米点均匀地形成在微透镜阵列上,其曲率半径低至类似于28μm。增大光栅的尺寸会导致生产区域成功扩展多达16 in(2)。通过顺序压印,模仿真实复眼的“纳米微结构”被转移到柔性和可拉伸的基材上,从而简化了适用于大面积纸张照明显示器的抗反射漫射器的多功能光学膜。

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