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具有增强光热性能的分层憎冰表面用于可持续防冰

Hierarchical Icephobic Surfaces with Enhanced Photothermal Performance for Sustainable Anti-Icing.

作者信息

Zhang Lei, Feng Yongle, Cao Xixin, Dong Yue, Liu Weihong, Li Bing, Li Jing, Hao Chonglei

机构信息

School of Mechanical Engineering and Automation, Harbin Institute of Technology, Shenzhen, 518055, China.

School of Materials Science and Engineering, Harbin Institute of Technology, Shenzhen, 518055, China.

出版信息

Adv Sci (Weinh). 2025 Jul;12(27):e2502945. doi: 10.1002/advs.202502945. Epub 2025 May 8.

Abstract

Icing remains a major challenge in industrial and environmental applications, leading to efficiency losses, safety hazards, and substantial economic impacts. Conventional deicing methods are energy-intensive and environmentally unsustainable, often requiring high energy inputs, extensive operational maintenance, or the use of harmful chemicals. These drawbacks underscore the need for advanced, scalable solutions that are both efficient and environmentally responsible. Here, the armored photothermal icephobic structured surface (APISS) is presented that combines superhydrophobicity and photothermal effects to deliver superior anti-icing performance. The APISS consists hierarchical micro-nanostructures with titanium nitride (TiN) nanoparticles encapsulated in a silica shell, ensuring exceptional durability and efficient solar energy conversion. Under 1 sun illumination, APISS achieves a temperature increase of 35 °C, effectively melting ice within 179 s and preventing refreezing. Its superhydrophobic properties facilitate the removal of melted water, maintaining a clean and dry surface. Comprehensive testing reveals that APISS significantly outperforms existing anti-icing materials in scalability, durability, and sustainability, making it highly suitable for renewable energy, aviation, and infrastructure maintenance. The work highlights APISS as an advanced approach to anti-icing technology, addressing critical challenges with a scalable and environmentally friendly solution.

摘要

结冰在工业和环境应用中仍然是一个重大挑战,会导致效率损失、安全隐患以及巨大的经济影响。传统的除冰方法能源密集且对环境不可持续,通常需要高能量输入、大量的运维工作或使用有害化学物质。这些缺点凸显了对既高效又环保的先进可扩展解决方案的需求。在此,我们展示了一种铠装光热憎冰结构化表面(APISS),它结合了超疏水性和光热效应,以提供卓越的防冰性能。APISS由具有分级微纳结构组成,氮化钛(TiN)纳米颗粒包裹在二氧化硅壳中,确保了出色的耐久性和高效的太阳能转换。在1个太阳光照强度下,APISS实现了35°C的温度升高,能在179秒内有效融化冰并防止再次结冰。其超疏水特性有助于去除融化的水,保持表面清洁干燥。全面测试表明,APISS在可扩展性、耐久性和可持续性方面显著优于现有的防冰材料,使其非常适合可再生能源、航空和基础设施维护领域。这项工作突出了APISS作为一种先进的防冰技术方法,以可扩展且环保的解决方案应对关键挑战。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/465d/12279169/7e7931462c89/ADVS-12-2502945-g001.jpg

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