State Key Laboratory of Infrared Physics, Shanghai Institute of Technical Physics, Chinese Academy of Sciences, Shanghai 200083, China.
Institute of Materials Research and Engineering, A*STAR (Agency for Science, Technology and Research), 2 Fusionopolis Way, 08-03 Innovis, Singapore 138634, Singapore.
Nanoscale. 2019 Nov 14;11(42):19742-19750. doi: 10.1039/c9nr06181a. Epub 2019 Oct 18.
Thermal radiation with narrow bandwidth and well-defined emission directions is highly sought after for a variety of applications, ranging from infrared sensing and thermal imaging to thermophotovoltaics. Here, a large-area (4-inch-diameter) long-wavelength infrared thermal emitter is presented, which is spectrally selective, highly directional, and easily fabricated. The basic structure of the proposed thermal emitter is composed of a truncated one-dimensional photonic crystal and a continuous metallic film separated by a dielectric spacer. Experimental results show that the emitter exhibits a narrowband thermal emittance peak of 92% in the normal direction at the wavenumber of 943.4 cm with a bandwidth of 12.5 cm and a narrow angular emission lobe with a limited solid angle of 0.325 sr (0.115 sr) for s (p) polarization. Numerical simulation analyses are performed to corroborate the experimental observations. Temporal coupled-mode theory combined with transfer matrix method is employed to analytically investigate the emission properties of the structure, which not only can be used to understand the experimental results, but also plays a certain guidance role in designing a thermal emitter with the desired properties. The present thermal emitter can be implemented for thermal photonics management, allowing applications in thermal imaging and medical systems, etc.
具有窄带宽和明确发射方向的热辐射在各种应用中受到广泛关注,包括红外感应和热成像到热光伏。在这里,提出了一种大面积(4 英寸直径)长波长红外热发射器,它具有光谱选择性、高度方向性和易于制造的特点。所提出的热发射器的基本结构由一个截断的一维光子晶体和一个由介电间隔层隔开的连续金属膜组成。实验结果表明,发射器在法向方向上在波数为 943.4 cm 处表现出 92%的窄带热发射率峰值,带宽为 12.5 cm,并且 s(p)偏振的窄角发射瓣具有有限的立体角为 0.325 sr(0.115 sr)。进行了数值模拟分析以验证实验观察结果。时谐耦合模理论结合转移矩阵方法被用于分析该结构的发射特性,这不仅可以用于理解实验结果,而且对设计具有所需特性的热发射器也具有一定的指导作用。本热发射器可用于热光子学管理,允许在热成像和医疗系统等应用中使用。