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一种具有自清洁能力的可扩展无雾抗反射分层表面。

A Scalable Haze-Free Antireflective Hierarchical Surface with Self-Cleaning Capability.

作者信息

Oh Seungtae, Cho Jin-Woo, Lee Jihun, Han Jeonghoon, Kim Sun-Kyung, Nam Youngsuk

机构信息

Carbon Neutral Technology R&D Department, Korea Institute of Industrial Technology (KITECH), Cheonan, 31056, Republic of Korea.

Department of Applied Physics, Kyung Hee University, Yongin, 17104, Republic of Korea.

出版信息

Adv Sci (Weinh). 2022 Sep;9(27):e2202781. doi: 10.1002/advs.202202781. Epub 2022 Jul 28.

Abstract

The lotus effect indicates that a superhydrophobic, self-cleaning surface can be obtained by roughening the topography of a hydrophobic surface. However, attaining high transmittance and clarity through a roughened surface remains challenging because of its strong scattering characteristics. Here, a haze-free, antireflective superhydrophobic surface that consists of hierarchically designed nanoparticles is demonstrated. Close-packed, deep-subwavelength-scale colloidal silica nanoparticles and their upper, chain-like fumed silica nanoparticles individually fulfill haze-free broadband antireflection and self-cleaning functions. These double-layered hierarchical surfaces are obtained via a scalable spraying process that permits precise control over the coating morphology to attain the desired optical and wetting properties. They provide a "specular" visible transmittance of >97% when double-side coated and a record-high self-cleaning capability with a near-zero sliding angle. Self-cleaning experiments on photovoltaic devices verify that the developed surfaces can significantly enhance power conversion efficiencies and aid in retaining pristine device performance in a dusty environment.

摘要

莲花效应表明,通过使疏水表面的形貌粗糙化,可以获得超疏水的自清洁表面。然而,由于粗糙表面具有很强的散射特性,要通过这种表面实现高透光率和清晰度仍然具有挑战性。在此,展示了一种由分级设计的纳米颗粒组成的无雾抗反射超疏水表面。紧密堆积的深亚波长尺度的胶体二氧化硅纳米颗粒及其上层的链状气相二氧化硅纳米颗粒分别实现了无雾宽带抗反射和自清洁功能。这些双层分级表面是通过一种可扩展的喷涂工艺获得的,该工艺允许精确控制涂层形态,以实现所需的光学和润湿性能。双面涂层时,它们的“镜面”可见光透过率大于97%,并且具有接近零滑动角的创纪录高自清洁能力。在光伏器件上进行的自清洁实验证明,所开发的表面可以显著提高功率转换效率,并有助于在多尘环境中保持器件的原始性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dfcf/9507353/cc678281d545/ADVS-9-2202781-g005.jpg

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