Larciprete M C, Centini M, Paoloni S, Fratoddi I, Dereshgi S A, Tang K, Wu J, Aydin K
Dipartimento di Scienze di Base ed Applicate per l'Ingegneria, Sapienza Università di Roma, Via Antonio Scarpa 16, 00161, Rome, Italy.
Dipartimento di Ingegneria Industriale, Università degli Studi di Roma Tor Vergata, Via del Politecnico 1, 00133, Rome, Italy.
Sci Rep. 2020 Jul 14;10(1):11544. doi: 10.1038/s41598-020-68334-2.
Phase-transition materials provide exciting opportunities for controlling optical properties of photonic devices dynamically. Here, we systematically investigate the infrared emission from a thin film of vanadium dioxide (VO). We experimentally demonstrate that such thin films are promising candidates to tune and control the thermal radiation of an underlying hot body with different emissivity features. In particular, we studied two different heat sources with completely different emissivity features, i.e. a black body-like and a mirror-like heated body. The infrared emission characteristics were investigated in the 3.5-5.1 μm spectral range using the infrared thermography technique which included heating the sample, and then cooling back. Experimental results were theoretically analyzed by modelling the VO film as a metamaterial for a temperature range close to its critical temperature. Our systematic study reveals that VO thin films with just one layer 80 nm thick has the potential to develop completely different dynamic tuning of infrared radiation, enabling both black-body emission suppression and as well as mirror emissivity boosting, in the same single layer device. Understanding the dynamics and effects of thermal tuning on infrared emission will benefit wide range of infrared technologies including thermal emitters, sensors, active IR filters and detectors.
相变材料为动态控制光子器件的光学特性提供了令人兴奋的机会。在此,我们系统地研究了二氧化钒(VO)薄膜的红外发射。我们通过实验证明,此类薄膜有望成为具有不同发射率特性的底层热体热辐射的调谐和控制候选材料。特别是,我们研究了具有完全不同发射率特性的两种不同热源,即类似黑体和类似镜子的加热体。使用红外热成像技术在3.5 - 5.1微米光谱范围内研究了红外发射特性,该技术包括加热样品,然后再冷却。通过将VO薄膜建模为接近其临界温度的温度范围内的超材料,对实验结果进行了理论分析。我们的系统研究表明,仅80纳米厚的单层VO薄膜有潜力在同一单层器件中实现完全不同的红外辐射动态调谐,既能抑制黑体发射,又能提高镜面发射率。理解热调谐对红外发射的动力学和影响将惠及包括热发射器、传感器、有源红外滤波器和探测器在内的广泛红外技术。