An optoelectronic Coupler based on graphene patterns and SU-8 photoresist

COMPEL Pub Date : 2024-01-31 DOI:10.1108/compel-03-2023-0087
Elham Zandi, Majid Fouladian, Jalil Mazloum
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Abstract

Purpose

The purpose of this research is to efficiently separate incident terahertz (THz) waves into distinct transmission and reflection channels by minimizing the absorption ratio. So, the optical systems operating within the THz frequency range can developed. To achieve a multi-band response, four different periodic arrays of graphene patterns are used. These arrays are strategically stacked on both sides of three SU-8 photoresists, serving as dielectric materials. Consequently, each layer exhibits a unique influence on the device's response, and by applying four external bias voltages, the behavior of the device can be precisely controlled and adjusted.

Design/methodology/approach

A novel optoelectronic device operating in the THz frequency range is introduced, using periodic arrays of graphene patterns and SU-8 photoresist dielectrics. The design of this device is based on meta-surface principles, using both the equivalent circuit model (ECM) and transmission line concept. The output of the device is a THz coupler implemented by analyzing the reflection and transmission channels. The structure is characterized using the ECM and validated through comprehensive full-wave simulations. By representing the electromagnetic phenomenon with passive circuit elements, enabling the calculation of absorption, reflection and transmission through the application of the theory of maximum power transfer.

Findings

Based on simulation results and theoretical analysis, the proposed device exhibits sensitivity to gate biasing, enabling efficient reflection and transmission of THz waves. The device achieves reflection and transmission peaks exceeding across the five distinct THz bands 90%, and its behavior can be tuned by external gate biasing. Moreover, the device's sensitivity to variations in geometrical parameters and chemical potentials demonstrates its reliable performance. With its outstanding performance, this high-performance meta-surface emerges as an ideal candidate for fundamental building blocks in larger optical systems, including sensors and detectors, operating within the THz frequency band.

Originality/value

The proposed device covers a significant portion of the THz gap through the provision of five adjustable peaks for reflection and transmission channels. Additionally, the ECM and impedance matching concept offers a simplified and time-efficient approach to designing the meta-surface. Leveraging this approach, the proposed device is effectively represented using passive circuit elements such as inductors, capacitors and resistors, while its performance is validated through the utilization of the finite element method (FEM) as a full-wave simulation tool. This combination of circuit modeling and FEM simulation contributes to the robustness and accuracy of the device's performance evaluation.

基于石墨烯图案和 SU-8 光刻胶的光电耦合器
本研究的目的是通过最小化吸收比,将入射太赫兹(THz)波有效地分离成不同的传输和反射通道。这样就能开发出在太赫兹频率范围内工作的光学系统。为了实现多波段响应,使用了四种不同的石墨烯图案周期性阵列。这些阵列被战略性地堆叠在作为介电材料的三层 SU-8 光刻胶的两侧。因此,每一层都会对器件的响应产生独特的影响,通过施加四个外部偏置电压,就可以精确地控制和调整器件的行为。该器件的设计基于元表面原理,同时使用了等效电路模型 (ECM) 和传输线概念。该器件的输出是通过分析反射和传输通道实现的太赫兹耦合器。该结构使用等效电路模型(ECM)进行表征,并通过全面的全波仿真进行验证。根据仿真结果和理论分析,所提出的器件对栅极偏压非常敏感,能够有效地反射和传输太赫兹波。该器件的反射和传输峰值超过了五个不同太赫兹波段的 90%,其行为可通过外部栅极偏压进行调整。此外,该器件对几何参数和化学势变化的敏感性也证明了其性能的可靠性。凭借其出色的性能,这种高性能元表面成为在太赫兹频段内工作的大型光学系统(包括传感器和探测器)中基本构件的理想候选材料。此外,ECM 和阻抗匹配概念为元表面的设计提供了一种简化且省时的方法。利用这种方法,拟议的器件可以有效地使用电感器、电容器和电阻器等无源电路元件来表示,同时通过使用有限元法(FEM)作为全波仿真工具来验证其性能。电路建模和有限元模拟的结合有助于提高器件性能评估的稳健性和准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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