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Nanotechnological Advances in Catalytic Thin Films for Green Large-Area Surfaces

机译:绿色大面积表面催化薄膜的纳米技术进展

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摘要

Large-area catalytic thin films offer great potential for green technology applications in order to save energy, combat pollution, and reduce global warming. These films, either embedded with nanoparticles, shaped with nanostructuring techniques, hybridized with other systems, or functionalized with bionanotechnological methods, can include many different surface properties including photocatalytic, antifouling, abrasion resistant and mechanically resistive, self-cleaning, antibacterial, hydrophobic, and oleophobic features. Thus, surface functionalization with such advanced structuring methods is of significance to increase the performance and wide usage of large-area thin film coatings specifically for environmental remediation. In this review, we focus on methods to increase the efficiency of catalytic reactions in thin film and hence improve the performance in relevant applications while eliminating high cost with the purpose of widespread usage. However, we also include the most recent hybrid architectures, which have potential to make a transformational change in surface applications as soon as high quality and large area production techniques are available. Hence, we present and discuss research studies regarding both organic and inorganic methods that are used to structure thin films that have potential for large-area and eco-friendly coatings.
机译:大面积催化薄膜为绿色技术应用提供了极大的潜力,以节省能源,战斗污染,减少全球变暖。这些薄膜,嵌入纳米颗粒,纳米颗粒成形为纳米结构技术,与其他系统杂交,或用脱硫技术官能化,可包括许多不同的表面性质,包括光催化,防污,耐磨性和机械电阻,自清洁,抗菌,疏水和疏水性和oleophobic功能。因此,具有这种先进的结构化方法的表面官能化具有重要性,以提高专门用于环境修复的大面积薄膜涂层的性能和广泛使用。在本文中,我们专注于提高薄膜中催化反应效率的方法,从而提高相关应用中的性能,同时消除了广泛使用的高成本。然而,我们还包括最新的混合架构,它一旦提供高质量和大面积的生产技术,就可能会在表面应用中进行变化变化。因此,我们展示并讨论了有关用于结构具有大面积和环保涂料的薄膜的有机和无机方法的研究。

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