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太赫兹波在3D打印结构中的动态扩散。

Terahertz waves dynamic diffusion in 3D printed structures.

作者信息

Missori Mauro, Pilozzi Laura, Conti Claudio

机构信息

Institute for Complex Systems, National Research Council, Via dei Taurini 19, 00185, Rome, Italy.

Department of Physics, University Sapienza, Piazzale Aldo Moro 5, 00185, Rome, Italy.

出版信息

Sci Rep. 2022 May 21;12(1):8613. doi: 10.1038/s41598-022-12617-3.

Abstract

Applications of metamaterials in the realization of efficient devices in the terahertz band have recently been considered to achieve wave deflection, focusing, amplitude manipulation and dynamical modulation. Terahertz metamaterials offer practical advantages since their structures have typical sizes of hundreds microns and are within the reach of current three-dimensional (3D) printing technologies. Here, we propose terahertz photonic structures composed of dielectric rods layers made of acrylonitrile styrene acrylate realized by low-cost, rapid, and versatile fused deposition modeling 3D-printing. Terahertz time-domain spectroscopy is employed for the experimental study of their spectral and dynamic response. Measured spectra are interpreted by using simulations performed by an analytical exact solution of the Maxwell equations for a general incidence geometry, by a field expansion as a sum over reciprocal lattice vectors. Results show that the structures possess specific spectral forbidden bands of the incident THz radiation depending on their optical and geometrical parameters. We also find evidence of disorder in the 3D printed structure resulting in the closure of the forbidden bands at frequencies above 0.3 THz. The size disorder of the structures is quantified by studying the dynamics diffusion of THz pulses as a function of the numbers of layers of dielectric rods. Comparison with simulations of light diffusion in photonic crystals with increasing disorder allows estimating the size distributions of elements. By using a Mean Squared Displacement model, from the broadening of the pulses' widths it is also possible to estimate the diffusion coefficient of the terahertz radiation in the photonic structures.

摘要

超材料在太赫兹波段高效器件实现中的应用最近被认为可实现波的偏转、聚焦、幅度操控和动态调制。太赫兹超材料具有实际优势,因为其结构的典型尺寸为数百微米,且在当前三维(3D)打印技术的能力范围内。在此,我们提出由丙烯腈 - 苯乙烯 - 丙烯酸酯制成的介电棒层构成的太赫兹光子结构,该结构通过低成本、快速且通用的熔融沉积建模3D打印实现。采用太赫兹时域光谱对其光谱和动态响应进行实验研究。通过使用针对一般入射几何结构的麦克斯韦方程组的解析精确解进行模拟,并通过作为倒易晶格矢量之和的场展开来解释测量光谱。结果表明,这些结构根据其光学和几何参数具有特定的入射太赫兹辐射光谱禁带。我们还发现3D打印结构中存在无序的证据,这导致在频率高于0.3太赫兹时禁带关闭。通过研究太赫兹脉冲的动力学扩散作为介电棒层数的函数来量化结构的尺寸无序。与无序程度增加的光子晶体中光扩散的模拟进行比较,可以估计元件的尺寸分布。通过使用均方位移模型,从脉冲宽度的展宽还可以估计太赫兹辐射在光子结构中的扩散系数。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f756/9124215/2c223d2b2a1c/41598_2022_12617_Fig1_HTML.jpg

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