Chu Qiongqiong, Zhang Fengyuan, Zhang Ye, Qiao Tong, Zhu Shining, Liu Hui
National Laboratory of Solid State Microstructures, School of Physics, Collaborative Innovation Center of Advanced Microstructures, Nanjing University, Nanjing, Jiangsu 210093, China.
Nanophotonics. 2022 Aug 11;11(18):4263-4271. doi: 10.1515/nanoph-2022-0328. eCollection 2022 Sep.
Microscale infrared thermal emitters are highly demanded in a variety of applications such as micro-molecular thermal sensing and micro-thermal imaging. In this paper, we propose a micro-meta-cavity array through combining nanohole metasurfaces and Fabry-Pérot (FP) cavity. Based on this design, integrated multiband micro-thermal emitters covering 7 - 9 μm and 10 - 14 μm wavelength ranges with high spatial resolution near wavelength scale has been theoretically and experimentally demonstrated simultaneously, providing the possibility for microscale infrared sources. In addition, narrow thermal emission bandwidth is enabled by the interaction between the resonant modes of metasurface and the FP cavity mode in meta-cavity. The emission features of each meta-cavity are investigated and analyzed through thermal imaging. Furthermore, polarization, wavelength and spatial multiplexing thermal emission with high spatial resolution is also experimentally demonstrated utilizing nanohole patterns. We anticipate that this thermal emission microchip can be possibly employed in micro-molecular sensing and micro-thermal imaging in the future.
微尺度红外热发射器在诸如微分子热传感和微热成像等各种应用中有着很高的需求。在本文中,我们通过结合纳米孔超表面和法布里-珀罗(FP)腔提出了一种微元腔阵列。基于此设计,理论和实验同时证明了集成多波段微热发射器,其覆盖7 - 9μm和10 - 14μm波长范围,在波长尺度附近具有高空间分辨率,为微尺度红外源提供了可能性。此外,元腔中超表面的共振模式与FP腔模式之间的相互作用实现了窄热发射带宽。通过热成像对每个元腔的发射特性进行了研究和分析。此外,利用纳米孔图案还通过实验证明了具有高空间分辨率的偏振、波长和空间复用热发射。我们预计这种热发射微芯片未来可能会用于微分子传感和微热成像。