首页> 外文期刊>Journal of the Optical Society of America, B. Optical Physics >Black phosphorus photoconductive terahertz antenna: 3D modeling and experimental reference comparison
【24h】

Black phosphorus photoconductive terahertz antenna: 3D modeling and experimental reference comparison

机译:黑色磷光电导泰赫尔兹天线:3D建模与实验参考比较

获取原文
获取原文并翻译 | 示例
           

摘要

This paper presents a 3D model of a terahertz photoconductive antenna (PCA) using black phosphorus, an emerging 2D anisotropic material, as the semiconductor layer. This work aims at understanding the potential of black phosphorus (BP) to advance the signal generation and bandwidth of conventional terahertz (THz) PCAs. The COMSOL Multiphysics package, based on the finite element method, is utilized to model the 3D BP PCA emitter using four modules: the frequency domain RF module to solve Maxwell's equations, the semiconductor module to calculate the photocurrent, the heat transfer in solids module to calculate the temperature variations, and the transient RF module to calculate the THz radiated electric field pulse. The proposed 3D model is computationally intensive where the PCA device includes thin layers of thicknesses ranging from nano- to microscale. The symmetry of the configuration was exploited by applying the perfect electric and magnetic boundary conditions to reduce the computational domain to only one quarter of the device in the RF module. The results showed that the temperature variation due to the conduction of current induced by the bias voltage increased by only 0.162 K. In addition, the electromagnetic power dissipation in the semiconductor due to the femtosecond laser source showed an increase in temperature by 0.441 K. The results show that the temperature variations caused the peak of the photocurrent to increase by similar to 3.4% and similar to 10%, respectively, under a maximum bias voltage of 1 V and average laser power of 1 mW. While simulating the active area of the antenna provided accurate results for the optical and semiconductor responses, simulating the thermal effect on the photocurrent requires a larger computational domain to avoid false rise in temperature. Finally, the simulated THz signal generation electric field pulse exhibits a trend in increasing the bandwidth of the proposed BP PCA compared with the measured pulse of a reference commercial LT-GaAs PCA. Enhancing signal generation and bandwidth will improve THz imaging and spectroscopy for biomedical and material characterization applications. (C) 2021 Optical Society of America
机译:本文提出了一种以黑磷(一种新兴的二维各向异性材料)为半导体层的太赫兹光导天线(PCA)的三维模型。本研究旨在了解黑磷(BP)在提高传统太赫兹(THz)光子晶体放大器信号产生和带宽方面的潜力。利用基于有限元法的COMSOL Multiphysics软件包,使用四个模块对3D BP PCA发射器进行建模:频域RF模块用于求解麦克斯韦方程组,半导体模块用于计算光电流,固体传热模块用于计算温度变化,以及瞬态射频模块,用于计算太赫兹辐射电场脉冲。提出的3D模型需要大量计算,其中PCA设备包括厚度从纳米到微米的薄层。通过应用完美的电磁边界条件,利用配置的对称性,将计算域减少到射频模块中设备的四分之一。结果表明,由偏置电压引起的电流传导引起的温度变化仅增加了0.162K,由于飞秒激光源,半导体中的电磁功耗显示温度增加了0.441K。结果表明,在最大偏压1V和平均激光功率1mW的情况下,温度变化导致光电流峰值分别增加了约3.4%和约10%。虽然模拟天线的活动区域为光学和半导体响应提供了准确的结果,但模拟光电流的热效应需要更大的计算域,以避免温度的虚假上升。最后,与参考商用LT-GaAs PCA的测量脉冲相比,模拟的太赫兹信号产生电场脉冲显示出增加建议的BP PCA带宽的趋势。增强信号生成和带宽将改善用于生物医学和材料表征应用的太赫兹成像和光谱学。(2021)美国光学学会

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号