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Solar selective coatings based on Carbon:Transition Metal Nanocomposites

机译:基于碳:过渡金属纳米复合材料的太阳能选择性涂料

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The design of an efficient and stable solar selective coating for Concentrating Solar Power central receivers requires a complex study of the materials candidates that compose the coating. Carbon-transition metal nanocomposites were studied in this work as absorber materials because they show appropriate optical properties with high absorption in the solar region and low thermal emittance in the infrared. Furthermore metal carbides are thermal and mechanical stable in air at high temperatures. In this work a solar selective coating was grown by a dual source filtered cathodic vacuum arc. The complete stack consists on an infrared reflection layer, an absorber layer of carbon-zirconium carbide nanocomposites and an antireflection layer. The aim of this research is optimize the absorber layer and for that, the metal content was controlled by adjusting the pulse ratio between the two arc sources. The elemental composition was determined by Ion Beam Analysis, X-Ray diffraction measurements show the crystal structure and the optical properties were characterized by spectroscopic ellipsometry measurements. The reflectance spectra of the complete selective coating were simulated with the optical software CODE. Bruggeman effective medium approximation was employed to average the dielectric functions of the two components which constitute the nanocomposite in the absorber layer. The optimized coating exhibited a solar absorptance of 95.41% and thermal emittance of 3.5% for 400°C. The simulated results were validated with a deposited multilayer selective coating.
机译:用于集中式太阳能集中接收器的高效稳定的太阳能选择性涂层的设计需要对构成涂层的候选材料进行复杂的研究。碳过渡金属纳米复合材料在这项工作中作为吸收材料进行了研究,因为它们显示出适当的光学特性,在太阳能区域具有高吸收性,而在红外线中具有较低的热发射率。此外,金属碳化物在高温下在空气中具有热和机械稳定性。在这项工作中,通过双源过滤阴极真空电弧生长了太阳能选择性涂层。整个叠层由红外反射层,碳-碳化锆纳米复合材料的吸收层和抗反射层组成。这项研究的目的是优化吸收层,为此,通过调节两个电弧源之间的脉冲比来控制金属含量。通过离子束分析确定元素组成,通过X射线衍射测量显示晶体结构,并通过分光镜椭圆偏光法测量表征光学性质。使用光学软件CODE模拟完整选择性涂层的反射光谱。使用布鲁格曼有效介质近似来平均构成吸收体层中纳米复合材料的两种组分的介电功能。经过优化的涂层在400°C的温度下具有95.41%的太阳吸收率和3.5%的热发射率。用沉积的多层选择性涂层验证了模拟结果。

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