Chen Boyi, Ma Can, Sun Tangyou, Song Qianju, Bian Liang, Yi Zao, Hao Zhiqiang, Tang Chaojun, Wu Pinghui, Zeng Qingdong
School of Mathematics and Science, Joint Laboratory for Extreme Conditions Matter Properties, The State Key Laboratory of Environment-Friendly Energy Materials, Tianfu Institute of Research and Innovation, Southwest University of Science and Technology, Mianyang 621010, China.
Department of Oncology, Sichuan Science City Hospital, Mianyang, Sichuan Province 621000, China.
Dalton Trans. 2024 Oct 29;53(42):17291-17298. doi: 10.1039/d4dt01971g.
Metamaterial absorbers show great potential in many scientific and technological applications by virtue of their sub-wavelength and easy-to-adjust structure, with bandwidth as an important standard to measure the performance of the absorbers. In this study, our team designed a new broadband absorber, which consists of an indium arsenide (InAs) disk at the top, a zinc selenide (ZnSe)-chromium (Cr) stacked disk in the middle and a metal film at the bottom. Simulation results show that the absorber has remarkable absorptivity properties in the mid-long infrared band. In a wavelength range of 5.71-16.01 μm, the average absorptivity is higher than 90%. In the band of 5.86-15.49 μm, the absorptivity is higher than 95%. By simulating the electromagnetic field diagram at each resonant frequency, the reason for high broadband absorptivity is obtained. We also constructed Poynting vector diagrams to further elucidate this phenomenon. Next, we analyzed the influence of different materials and structural parameters on absorptivity properties and tested spectral response at different polarization angles and oblique incidence of the light source in the TM and TE modes. When the source is normally incident, the absorber shows polarization insensitivity. When the angle is 40°, absorptivity is still high, indicating that the absorber also possesses angle insensitivity. The broadband absorber proposed by us has good prospects in infrared detection and thermal radiators.
超材料吸收体凭借其亚波长且易于调节的结构,在许多科技应用中展现出巨大潜力,带宽是衡量吸收体性能的一项重要标准。在本研究中,我们团队设计了一种新型宽带吸收体,其顶部由砷化铟(InAs)圆盘构成,中间是硒化锌(ZnSe)-铬(Cr)堆叠圆盘,底部是金属膜。模拟结果表明,该吸收体在中长红外波段具有显著的吸收特性。在5.71 - 16.01μm波长范围内,平均吸收率高于90%。在5.86 - 15.49μm波段,吸收率高于95%。通过模拟各共振频率下的电磁场图,得出了高宽带吸收率的原因。我们还构建了坡印廷矢量图以进一步阐明这一现象。接下来,我们分析了不同材料和结构参数对吸收特性的影响,并测试了在TM和TE模式下不同偏振角以及光源斜入射时的光谱响应。当光源垂直入射时,吸收体表现出偏振不敏感性。当角度为40°时,吸收率仍然很高,这表明该吸收体还具有角度不敏感性。我们提出的宽带吸收体在红外探测和热辐射器方面具有良好的前景。