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具有多尺度分层结构的仿生全方位自稳定反射器。

Bioinspired Omnidirectional Self-Stable Reflectors with Multiscale Hierarchical Structures.

机构信息

Key Laboratory of Bionic Engineering, Ministry of Education, Jilin University , Changchun 130022, China.

出版信息

ACS Appl Mater Interfaces. 2017 Aug 30;9(34):29285-29294. doi: 10.1021/acsami.7b08768. Epub 2017 Aug 15.

Abstract

Structured surfaces, demonstrating various wondrous physicochemical performances, are ubiquitous phenomena in nature. Butterfly wings with impressive structural colors are an interesting example for multiscale hierarchical structures (MHSs). However, most natural structural colors are relatively unstable and highly sensitive to incident angles, which limit their potential practical applications to a certain extent. Here, we reported a bioinspired color reflector with omnidirectional reflective self-stable (ORS) properties, which is inspired by the wing scales of Papilio palinurus butterfly. Through experimental exploration and theoretical analysis, it was found that the vivid colors of such butterfly wings are structure-based and possess novel ORS properties, which attributes to the multiple optical actions between light and the complex structures coupling the inverse opal-like structures (IOSs) and stacked lamellar ridges (SLRs). On the basis of this, we designed and successfully fabricated the SiO-based bioinspired color reflectors (BCRs) through a facile and effective biotemplate method. It was confirmed that the MHSs in biotemplate are inherited by the obtained SiO-based BCRs. More importantly, the SiO-based BCRs also demonstrated the similar ORS properties in a wide wavelength range. We forcefully anticipate that the reported MHS-based ORS performance discovered in butterfly wing scales here could offer new thoughts for scientists to solve unstable reflection issues in particular optical field. The involved biotemplate fabrication method offers a facile and effective strategy for fabricating functional nanomaterials or bioinspired nanodevices with 3D complex nanostructures, such as structured optical devices, displays, and optoelectronic equipment.

摘要

具有各种奇妙物理化学性能的结构化表面是自然界中普遍存在的现象。具有令人印象深刻结构颜色的蝴蝶翅膀是多尺度分层结构 (MHS) 的一个有趣示例。然而,大多数天然结构颜色相对不稳定,对入射角高度敏感,这在一定程度上限制了它们的潜在实际应用。在这里,我们报道了一种受蝴蝶翅膀鳞片启发的具有全向反射自稳定 (ORS) 特性的仿生彩色反射器。通过实验探索和理论分析,发现这种蝴蝶翅膀的鲜艳颜色是基于结构的,并具有新颖的 ORS 特性,这归因于光与复杂结构之间的多次光学相互作用,这些复杂结构结合了类蛋白石结构 (IOS) 和堆叠的层状脊 (SLR)。在此基础上,我们通过一种简单有效的生物模板方法设计并成功制备了基于 SiO2 的仿生彩色反射器 (BCR)。证实了生物模板中的 MHS 被获得的基于 SiO2 的 BCR 所继承。更重要的是,基于 SiO2 的 BCR 还在很宽的波长范围内表现出类似的 ORS 特性。我们强烈预期,这里在蝴蝶翅膀鳞片中发现的基于 MHS 的 ORS 性能可以为科学家提供新的思路,以解决特定光学领域中反射不稳定的问题。所涉及的生物模板制造方法为制造具有 3D 复杂纳米结构的功能纳米材料或仿生纳米器件,如结构化光学器件、显示器和光电设备,提供了一种简单有效的策略。

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