用于生物医学传感的基于石墨烯圆盘的可调节太赫兹吸收器:理论描述

Masoud Soltani Zanjani, Hassan Sadrnia
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引用次数: 0

摘要

作为一种基本构件,太赫兹波吸收器在成像、传感和无损检测方面有着广泛的应用。太赫兹吸收器的调谐方法有多种,包括电调谐、光调谐、机械调谐、使用相变材料、液晶、柔性材料、MEMS 技术和热调谐二氧化钒。调谐方法的选择取决于太赫兹吸收器的具体应用和所需的性能特征。在这项工作中,我们报告了基于石墨烯纳米盘重叠周期阵列的机械可调太赫兹吸收器的理论描述。这项工作的基础是双面覆盖石墨烯盘的介电表面的运动。这个表面在一个固定平面上移动,而这两个表面之间的距离是自由空间。此外,固定表面由底部相对较厚的金层、上面的电介质和电介质上的石墨烯圆盘图案组成。现在,通过在水平方向上移动可移动表面,就可以调节太赫兹(THz)波段不同频率的吸收量。此外,还建立了一个等效 RLC 电路模型,理论结果与模拟数据相吻合。由于所提出的机械可调太赫兹吸收器能够以多个吸收峰覆盖所有太赫兹间隙甚至更远,因此可用于传感等各种新兴应用领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Adjustable graphene disk‐based THz absorber for biomedical sensing: Theoretical description
As a basic building block, the THz wave absorber has intense imaging, sensing, and nondestructive testing applications. There are several methods for tuning THz absorbers, including electricity modulation, light modulation, mechanical tuning, using phase change materials, liquid crystal, flexible materials, MEMS technology, and thermally tuning vanadium dioxide. The choice of tuning method depends on the specific application and the desired performance characteristics of the THz absorber. In this work, we report a theoretical description of mechanically tunable THz absorber based on overlapping periodic arrays of graphene nano‐disks. The basis of this work is based on the movement of a dielectric surface covered on both sides with graphene disks. This surface moves on a fixed plane while the distance between these two surfaces is free space. Also, the fixed surface consists of a relatively thick layer of gold at the bottom, dielectric on it, and graphene disk patterns on the dielectric. Now, by moving the movable surface in the horizontal direction, it is possible to adjust the amount of absorption in different frequencies of the terahertz (THz) band. Additionally, an equivalent RLC circuit model is developed and theoretical results match with simulated data. The proposed mechanically tunable THz absorber can be exploited in various emerging applications such as sensing due to its capability of covering all of the THz gap and beyond with multiple absorption peaks.
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