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Monolithic graded-refractive-index glass-based antireflective coatings: broadband/omnidirectional light harvesting and self-cleaning characteristics

机译:单片渐变折射率玻璃基抗反射涂层:宽带/全向光收集和自清洁特性

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A revolutionary impact on the performance of many optical systems and components can come from the integrative design of multifunctional coatings. Such coatings should be mechanically robust, and combine user-defined optical and wetting functions with scalable fabrication formulations. By taking cues from the properties of some natural biological structures, we report here the formation of low-refractive index antireflective glass films that embody omni-directional optical properties over a wide range of wavelengths, while also possessing specific wetting capabilities. The coatings comprise an interconnected network of nanoscale pores surrounded by a nanostructured silica framework. These structures result from a novel fabrication method that utilizes metastable spinodal phase separation in glass-based materials. The approach not only enables design of surface microstructures with graded-index antireflection characteristics, where the surface reflection is suppressed through optical impedance matching between interfaces, but also facilitates self-cleaning ability through modification of the surface chemistry. Based on near complete elimination of Fresnel reflections (yielding 495% transmission through a single-side coated glass) and corresponding increase in broadband transmission, the fabricated nanostructured surfaces are found to promote a general and an invaluable similar to 3-7% relative increase in current output of multiple direct/indirect bandgap photovoltaic cells. Moreover, these antireflective surfaces also demonstrate superior resistance against mechanical wear and abrasion. Unlike conventional counterparts, the present antireflective coatings are essentially monolithic, enabling simultaneous realization of graded index anti-reflectivity, self-cleaning capability, and mechanical stability within the same surface. The concept represents a fundamental basis for development of advanced coated optical quality products, especially where environmental exposure is required.
机译:多功能涂层的集成设计可能对许多光学系统和组件的性能产生革命性影响。此类涂层应具有机械坚固性,并将用户定义的光学和润湿功能与可扩展的制造配方相结合。通过从某些自然生物结构的性质中获得线索,我们在此报告了低折射率抗反射玻璃膜的形成,该膜在很宽的波长范围内体现了全向光学特性,同时还具有特定的润湿能力。涂层包括被纳米结构的二氧化硅骨架包围的纳米级孔的互连网络。这些结构来自一种新颖的制造方法,该方法利用了玻璃基材料中的亚稳态旋节线相分离。该方法不仅可以设计具有渐变折射率抗反射特性的表面微结构,通过界面之间的光学阻抗匹配来抑制表面反射,而且还可以通过改变表面化学性质来提高自清洁能力。基于几乎完全消除了菲涅耳反射(通过单面镀膜玻璃获得495%的透射率)和相应的宽带透射率的增加,发现所制造的纳米结构表面可促进普遍的和不可估量的类似于3-7%的相对增加。多个直接/间接带隙光伏电池的电流输出。此外,这些抗反射表面还显示出优异的抗机械磨损性。与常规对应物不同,本发明的抗反射涂层基本上是整体的,从而能够在同一表面内同时实现渐变折射率抗反射性,自清洁能力和机械稳定性。该概念代表了开发高级镀膜光学质量产品的基础,特别是在需要暴露于环境的情况下。

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