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Nantenna for Standard 1550 nm Optical Communication Systems

机译:用于标准1550 nm光通信系统的Nantenna

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Nanoscale transmission and reception technologieswill play a vital role and be part of the next generation communication networks. This applies for all application fields including imaging, health, biosensing, civilian, and military communications. The detection of light frequency using nanooptical antennas may possibly become a good competitor to the semiconductor based photodetector because of the simplicity of integration, cost, and inherent capability to detect the phase and amplitude instead of power only. In this paper, authors propose simulated design of a hexagonal dielectric loaded nantenna (HDLN) and explore its potential benefits at the standard optical C-band (1550 nm). The proposed nantenna consists of "Ag-SiO2-Ag" structure, consisting of "Si" hexagonal dielectric with equal lengths fed by "Ag" nanostrip transmission line. The simulated nantenna achieves an impedance bandwidth of 3.7% (190.9THz-198.1THz) and a directivity of 8.6 dBi, at a center frequency of 193.5 THz, covering most of the ITU-T standard optical transmission window (C-band). The hexagonal dielectric nantenna produces HE20 delta modes and the wave propagation is found to be end-fire. The efficiency of the nantenna is proven via numerical expressions, thus making the proposed design viable for nanonetwork communications.
机译:纳米级传输和接收技术将发挥至关重要的作用,并将成为下一代通信网络的一部分。这适用于所有应用领域,包括成像,健康,生物传感,民用和军事通信。由于集成的简单性,成本以及检测相位和幅度而不是仅检测功率的固有能力,使用纳米光学天线检测光频率可能会成为基于半导体的光电检测器的良好竞争者。在本文中,作者提出了六边形电介质加载的天线(HDLN)的模拟设计,并探讨了其在标准光学C波段(1550 nm)的潜在优势。拟议的天线由“ Ag-SiO2-Ag”结构组成,该结构由“ Ag”纳米带传输线馈入的等长的“ Si”六角形电介质组成。模拟的天线在193.5 THz的中心频率下实现了3.7%(190.9THz-198.1THz)的阻抗带宽和8.6 dBi的方向性,覆盖了大部分ITU-T标准光学传输窗口(C波段)。六角形介电纳米天线产生HE20δ模式,并且发现波传播为端射。通过数值表达式证明了天线的效率,从而使所提出的设计适用于纳米网络通信。

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  • 来源
    《International journal of antennas and propagation》 |2016年第2期|5429510.1-5429510.9|共9页
  • 作者单位

    King Saud Univ, KACST Technol Innovat Ctr Radio Frequency & Photo, Riyadh 11451, Saudi Arabia|Univ Rennes 1, Inst Elect & Telecommun Rennes Univ IETR, F-35700 Rennes, France;

    King Saud Univ, Dept Elect Engn, POB 800, Riyadh 11421, Saudi Arabia;

    King Saud Univ, KACST Technol Innovat Ctr Radio Frequency & Photo, Riyadh 11451, Saudi Arabia|King Saud Univ, Dept Elect Engn, POB 800, Riyadh 11421, Saudi Arabia;

    Univ Rennes 1, Inst Elect & Telecommun Rennes Univ IETR, F-35700 Rennes, France;

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