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Stretchable Selective Emitters based on Carbon Nanotube Films for Adaptive Thermal Control

机译:基于碳纳米管膜的可伸展选择性发射器,用于自适应热控制

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Selective emitters based on nanostructured materials have received increasing attention around the world as a novel branch in the development of thermal control systems. However, conventional selective emitter designs do not offer a dynamic control mechanism that is highly desired in many applications such as surface cooling. The self-adaptation properties of selective emitters are essential to address large-scale surface cooling and heating demands for buildings and civil infrastructures. In this work, we demonstrate the tunable emissivity of the thermal emitter consisting of carbon nanotubes (CNTs) film on top of a stretchable silicone gel substrate. The broad wavelength-selective spectral emissivity in the Near-Infrared (NIR) and Middle-Infrared (mid-IR) ranges for this thermal emitter is illustrated and it can be continuously tuned when the film is under different strains. For instance, the average emissivity decreases by 0.2 in the UV-Vis-NIR range and 0.1 in the mid-IR range when the film goes through a strain of 80%. The hypothesis is that the emissivity changes with porosity inside the CNTs film when it suffers certain amounts of strains. We characterize the switchable emissivity by Ultraviolet-Visible-Near IR Spectroscopy (UV-Vis-NIR) and Fourier-Transform Infrared Spectroscopy (FTIR). Our recycling measurement also confirms the repeatability of this emissivity change. The temperature prediction based on emissivity data suggests that the temperature difference can be up to 8 K between strained and unstrained samples assuming a steady ambient environment, typical weather condition and solar irradiance in California. Through this successful control of thermal emissivity, the way is paved towards some potential applications in thermal areas like heat management, thermal energy harvesting and passive radiative cooling.
机译:基于纳米结构材料的选择性发射器在热控制系统开发的新型分支中,世界各地的关注越来越高。然而,传统的选择性发射极设计不提供动态控制机构,这在诸如表面冷却的许多应用中是非常需要的。选择性发射器的自适应性能对于解决建筑物和民用基础设施的大规模表面冷却和加热需求至关重要。在这项工作中,我们展示了由可伸缩硅氧烷凝胶衬底顶部的碳纳米管(CNT)膜组成的热发射器的可调谐发射率。近红外线(NIR)和中红外线(中红外线)范围的宽波长选择光谱发射率被示出为该热发射器的范围,并且当薄膜在不同的菌株下时可以连续调整。例如,在膜通过80%的应变时,平均发射率在UV-Vis-Nir范围内降低0.2,在中红外线范围内。假设是,当它受到一定量的菌株时,发射率随着CNT薄膜内的孔隙率而变化。我们用紫外 - 可见近红外光谱(UV-Vis-Nir)和傅立叶变换红外光谱(FTIR)表征可切换发射率。我们的回收测量还证实了这种发射率变化的可重复性。基于发射率数据的温度预测表明,假设加利福尼亚州的稳定的环境环境,典型的天气状况和太阳辐照度,应变和未训练的样本之间的温差可以高达8 k。通过这种成功控制热发射率,铺设了热量区域的一些潜在应用,如热管理,热能收集和被动辐射冷却。

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