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High-temperature photonics using self-organization of superalloys for solar selective absorbers

机译:用于太阳能选择性吸收剂的高温合金的高温光子学

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Making surface microstructures on refractory metal is one of the promising technologies of controlling optical property at high-temperature condition. However, the technique of fabricating microstructures for refractory metal is limited, such as using semiconductor technologies. Therefore, the large-area fabrication of periodic microstructures on refractory metals is a key technology supporting the practical application of controlling optical property using surface microstructures. This report describes large-area fabrication of two-dimensional submicron quasi-periodic microcavities using self-organization on a nickel-based superalloy. The surface microcavities on a bulk metal were obtained by appropriate heat treatments and simple chemical etching process. The spectrally selective property attributed to the confined modes inside cavities is observed. The selective absorbing property and thermal stability are also confirmed at 973 K. Therefore, this fabrication method can be applied for high temperature solar selective absorbers. The fabricated sample showed solar absorptance of 0.74 and emittance of 0.25 at 873 K. The performance of solar selective absorber is verified by simple heating test using the sample with randomly arrayed microstructures. It is indicated that the temperature of microstructured sample shows 30°C higher than that of a black-painted sample.
机译:在耐火金属上制造表面微结构是在高温条件下控制光学性质的有希望的技术之一。然而,为难熔金属制造微结构的技术是有限的,例如使用半导体技术。因此,耐火金属上的周期性微观结构的大面积制造是使用表面微结构控制光学性能的实际应用的关键技术。本报告描述了在镍基超合金上使用自组织的二维亚微米周期性微窝度的大面积制造。通过适当的热处理和简单的化学蚀刻工艺获得散装金属上的表面微腔。观察到归因于腔内内狭窄模式的光谱选择性。在973k也确认选择性吸收性和热稳定性。因此,该制造方法可以应用于高温太阳能选择性吸收器。制造的样品显示出0.74的太阳能吸收率,并且873k下的粘合率为0.25。通过使用随机阵列的微结构的样品通过简单的加热试验验证太阳能选择性吸收剂的性能。结果表明,微结构化样品的温度显示比黑涂样品高30℃。

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