Huang Xiaojun, Zhou Ziliang, Cao Miao, Li Rong, Sun Cuizhen, Li Xiaoyan
College of Communication and Information Engineering, Xi'an University of Science and Technology, Xi'an 710054, China.
College of Physical Science and Technology, Northwestern Polytechnical University, Xi'an 710129, China.
Materials (Basel). 2022 Aug 5;15(15):5411. doi: 10.3390/ma15155411.
Mid-infrared metamaterial absorbers have many applications in the field of infrared detection, infrared thermal energy utilization, radiation refrigeration, invisible camouflage, etc. In this study, we designed an ultra-broadband mid-infrared metamaterial absorber based on multi-sized resonators. The structure of the absorber consisted of a gold substrate and nine resonators. The simulated results showed that the absorptivity of the absorber was higher than 90% in the 8.33-15.09 μm waveband with an average absorptivity of 95.17%. The energy distributions of the electric and magnetic fields were introduced to investigate the physics of broadband absorption. Moreover, we combined the multi-layer structure with the plane random arrangement structure to achieve a balance between thickness and width. Our study further illustrates the potential application of multi-sized resonators in metamaterial absorbers to realize high absorptivity and ultra-broadband to improve the performance of devices applied in infrared detection, radiation refrigeration, and other fields.
中红外超材料吸收器在红外探测、红外热能利用、辐射制冷、隐形伪装等领域有诸多应用。在本研究中,我们基于多尺寸谐振器设计了一种超宽带中红外超材料吸收器。该吸收器结构由金基底和九个谐振器组成。模拟结果表明,该吸收器在8.33 - 15.09μm波段的吸收率高于90%,平均吸收率为95.17%。引入电场和磁场的能量分布来研究宽带吸收的物理机制。此外,我们将多层结构与平面随机排列结构相结合,以实现厚度和宽度之间的平衡。我们的研究进一步说明了多尺寸谐振器在超材料吸收器中的潜在应用,以实现高吸收率和超宽带,从而提高应用于红外探测、辐射制冷等领域的器件性能。