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Thermochromic Oxide-Based Thin Films and Nanoparticle Composites for Energy-Efficient Glazings

机译:基于热致变色氧化物的薄膜和纳米颗粒复合材料,用于节能玻璃

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Today?¢????s advances in materials science and technology can lead to better buildings with improved energy efficiency and indoor conditions. Particular attention should be directed towards windows and glass facades?¢????jointly known as ?¢????glazings?¢?????¢????since current practices often lead to huge energy expenditures related to excessive inflow or outflow of energy which need to be balanced by energy-intensive cooling or heating. This review article outlines recent progress in thermochromics, i.e., it deals with materials whose optical properties are strongly dependent on temperature. In particular, we discuss oxide-based thin surface coatings (thin films) and nanoparticle composites which can be deposited onto glass and are able to regulate the throughput of solar energy while the luminous (visible) properties remain more or less unaltered. Another implementation embodies lamination materials incorporating thermochromic (TC) nanoparticles. The thin films and nanocomposites are based on vanadium dioxide (VO 2 ), which is able to change its properties within a narrow temperature range in the vicinity of room temperature and either reflects or absorbs infrared light at elevated temperatures, whereas the reflectance or absorptance is much smaller at lower temperatures. The review outlines the state of the art for these thin films and nanocomposites with particular attention to recent developments that have taken place in laboratories worldwide. Specifically, we first set the scene by discussing environmental challenges and their relationship with TC glazings. Then enters VO 2 and we present its key properties in thin-film form and as nanoparticles. The next part of the article gives perspectives on the manufacturing of these films and particles. We point out that the properties of pure VO 2 may not be fully adequate for buildings and we elaborate how additives, antireflection layers, nanostructuring and protective over-coatings can be employed to yield improved performance and durability that make TC glazings of considerable interest for building-related applications. Finally, we briefly describe recent developments towards TC light scattering and draw some final conclusions.
机译:如今,材料科学和技术的进步可以带来具有更高能效和室内条件的更好的建筑。应特别注意窗户和玻璃幕墙?由于目前的做法通常会导致与过度使用相关的大量能源消耗,因此通常被称为“窗玻璃”。能量的流入或流出需要通过高能耗的冷却或加热来平衡。这篇综述文章概述了热致变色技术的最新进展,即它涉及光学性能强烈依赖于温度的材料。特别是,我们讨论了可以沉积在玻璃上并能够调节太阳能通过量的氧化物基薄表面涂层(薄膜)和纳米颗粒复合材料,而发光(可见)特性或多或少保持不变。另一实施方式体现了包含热致变色(TC)纳米粒子的层压材料。薄膜和纳米复合材料是基于二氧化钒(VO 2)的,它能够在室温附近的狭窄温度范围内改变其性能,并在高温下反射或吸收红外光,而反射率或吸收率是在较低温度下要小得多。这篇综述概述了这些薄膜和纳米复合材料的最新技术,特别关注了全球实验室的最新发展。具体来说,我们首先通过讨论环境挑战及其与TC玻璃的关系来设定背景。然后进入VO 2,我们以薄膜形式和纳米颗粒形式展示其关键特性。本文的下一部分提供了有关这些膜和颗粒的制造的观点。我们指出,纯VO 2的性能可能无法完全满足建筑物的需求,我们将详细说明如何使用添加剂,抗反射层,纳米结构和保护性外涂层来提高性能和耐用性,从而使TC玻璃具有很大的建筑价值相关的应用程序。最后,我们简要描述了TC光散射的最新发展,并得出了一些最终结论。

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