Ma Binze, Huang Yun, Zha Weiyi, Qin Bing, Qin Rui, Ghosh Pintu, Kaur Sandeep, Qiu Min, Li Qiang
State Key Laboratory of Modern Optical Instrumentation, College of Optical Science and Engineering, Zhejiang University, Hangzhou 310027, China.
Key Laboratory of 3D Micro/Nano Fabrication and Characterization of Zhejiang Province, School of Engineering, Westlake University, 18 Shilongshan Road, Hangzhou 310024, China.
Nanophotonics. 2022 Mar 21;11(17):4115-4122. doi: 10.1515/nanoph-2022-0047. eCollection 2022 Sep.
Thermal emission engineering with ability to realize spectral and spatial selection has attracted great attention in recent years. Nanophotonic control of thermal radiation has demonstrated narrowband thermal emitter but with high angle-sensitivity and diffuse thermal emitter but with low quality factor (). Here, we demonstrate a simultaneous narrowband, diffuse thermal emitter consisting of 80 nm (</100) thick Ge nanostructures on a silicon carbide (SiC) phononic material. Based on surface phonon polaritons, a spectral coherent emission with a high factor of 101 is achieved at ∼10.9 μm wavelength in experiment. Furthermore, this phonon-mediated nanostructure provides spatial control with strong diffuse thermal emission with a full angle at half maximum of 70°. Additionally, the emission wavelength and intensity are tuned by replacing Ge with phase change materials (GeSbTe and InSbTe). The designed narrowband diffuse thermal emitter offers new perspectives for the engineering of emission and paves the way for infrared applications, including thermal sources, radiative cooling, infrared sensing, and thermal photovoltaics.
近年来,具备实现光谱和空间选择能力的热发射工程备受关注。热辐射的纳米光子控制已展示出窄带热发射器,但具有高角度敏感性,以及漫射热发射器,但品质因数较低。在此,我们展示了一种由碳化硅(SiC)声子材料上80纳米(</100)厚的锗纳米结构组成的同时具备窄带、漫射的热发射器。基于表面声子极化激元,在实验中于约10.9微米波长处实现了品质因数高达101的光谱相干发射。此外,这种声子介导的纳米结构提供了空间控制,具有半高全角为70°的强漫射热发射。另外,通过用相变材料(GeSbTe和InSbTe)替代锗来调节发射波长和强度。所设计的窄带漫射热发射器为发射工程提供了新视角,并为包括热光源、辐射冷却、红外传感和热光伏在内的红外应用铺平了道路。