Xie Wenke, Tang Qian, Xie Jinlong, Fei Yang, Wan Hujie, Zhao Tao, Ding Tianpeng, Xiao Xu, Wen Qiye
School of Electronic Science and Engineering, University of Electronic Science and Technology of China, Chengdu, China.
School of Physics, University of Electronic Science and Technology of China, Chengdu, China.
Nat Commun. 2024 Jan 2;15(1):38. doi: 10.1038/s41467-023-44344-2.
The fast-growing terahertz technologies require high-performance terahertz absorber for suppressing electromagnetic interference. Since the dissipation mechanism in terahertz band usually focuses on electronic conduction loss, almost all terahertz absorbers are constructed with electronically conducting materials being opaque, which limits their applications in scenarios requiring high visible transmittance. Here, we demonstrate a transparent terahertz absorber based on permittivity-gradient elastomer-encapsulated-organohydrogel. Our organohydrogel-based terahertz absorber exhibits a high absorbing property (average reflection loss of 49.03 dB) in 0.5-4.5 THz band with a thin thickness of 700 μm and a high average visible transmittance of 85.51%. The terahertz absorbing mechanism mainly derives from the ionic conduction loss of the polar liquid in organohydrogel. Besides, the hydrophobic and adhesive elastomer coating endows this terahertz absorber high absorbing stability and interfacial adhesivity. This work paves a viable way to designing transparent terahertz absorbers.
快速发展的太赫兹技术需要高性能的太赫兹吸收体来抑制电磁干扰。由于太赫兹频段的耗散机制通常集中在电子传导损耗上,几乎所有的太赫兹吸收体都是由不透明的导电材料构建而成,这限制了它们在需要高可见光透射率的场景中的应用。在此,我们展示了一种基于介电常数梯度弹性体封装有机水凝胶的透明太赫兹吸收体。我们基于有机水凝胶的太赫兹吸收体在0.5 - 4.5太赫兹频段表现出高吸收性能(平均反射损耗为49.03分贝),厚度仅为700微米,且平均可见光透射率高达85.51%。太赫兹吸收机制主要源于有机水凝胶中极性液体的离子传导损耗。此外,疏水且具有粘性的弹性体涂层赋予了这种太赫兹吸收体高吸收稳定性和界面粘附性。这项工作为设计透明太赫兹吸收体开辟了一条可行的途径。