柔性基板的耐用、透明和超疏水薄膜设计

IF 6 3区 工程技术 Q2 ENERGY & FUELS
Solar RRL Pub Date : 2025-01-13 DOI:10.1002/solr.202400732
Minghong Sun, Xiaoyun Liu, Meijing Wu, Jiajun Miao, Hong Lin, Zhao Wu, Yifan Diao, Yue Yang
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引用次数: 0

摘要

透明超疏水薄膜/涂层由于其制备简单、成本低、自清洁过程和有效减少表面灰尘附着等优点,近年来在太阳能领域得到了广泛的关注。有机玻璃罩与刚性玻璃罩相比,具有柔韧性和重量轻的优点,但粉尘沉积影响更严重。本研究的目的是在有机玻璃表面设计一种具有良好耐久性的透明超疏水薄膜,以恢复因粉尘沉积而导致的组件效率降低。基于软光刻和热压工艺,在有机玻璃表面制备了周期性的微腔作为装甲结构,并将疏水性SiO2纳米粒子喷射到微腔中,以达到抗反射和超疏水性的目的。实验测试结果表明,所设计的薄膜具有160°左右的大接触角、3°左右的滑动角和90%以上的高可见光透过率。独特的护甲结构设计大大提高了薄膜的耐磨性,在遇到砂纸摩擦、水流冲击、酸浸、紫外线照射、反复弯曲等恶劣条件后,仍能保持优异的超疏水性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Durable, Transparent, and Superhydrophobic Film Design for Flexible Substrate

Transparent superhydrophobic films/coatings have recently gained significant attention in the solar energy field due to their ease of preparation, low cost, self-cleaning process, and high effectiveness in reducing dust adhesion to the surface. Compared to the rigid glass cover, the organic one has an advantage of flexibility and light weight, but the dust deposition impact is more serious. The aim of the present study is to design a transparent and superhydrophobic film with good durability on the organic glass surface, to recover the module efficiency reduction caused by dust deposition. Based on a soft photolithography and hot-pressing process, periodic microcavities are prepared on the organic glass surface as an armor structure, and hydrophobic SiO2 nanoparticles are sprayed into the microcavities to achieve anti-reflection and superhydrophobicity. The experimental test results show that the designed film possesses a large contact angle around 160°, a sliding angle of 3°, and a high visible transmittance over 90%. The unique armor structure design greatly improves the wear resistance of the film, and after encountering harsh conditions such as sandpaper friction, water flow impact, acid immersion, UV exposure, and repeatable bending, it still maintains excellent superhydrophobicity.

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来源期刊
Solar RRL
Solar RRL Physics and Astronomy-Atomic and Molecular Physics, and Optics
CiteScore
12.10
自引率
6.30%
发文量
460
期刊介绍: Solar RRL, formerly known as Rapid Research Letters, has evolved to embrace a broader and more encompassing format. We publish Research Articles and Reviews covering all facets of solar energy conversion. This includes, but is not limited to, photovoltaics and solar cells (both established and emerging systems), as well as the development, characterization, and optimization of materials and devices. Additionally, we cover topics such as photovoltaic modules and systems, their installation and deployment, photocatalysis, solar fuels, photothermal and photoelectrochemical solar energy conversion, energy distribution, grid issues, and other relevant aspects. Join us in exploring the latest advancements in solar energy conversion research.
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