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Resonant Tunnelling Diodes for Millimetre and Sub-Millimetre Wave Mixing Applications

机译:适用于毫米波和亚毫米波混频应用的共振隧穿二极管

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摘要

The primary intention of this research work was to evaluate a topology for a sub-harmonic down conversion mixer exploiting the fourth harmonic of a LO signal. Designs were evaluated by simulation at 640GHz and 320GHz with the aim of exploring the potential of a RTD based down-converter at 640GHz, in the 580-750GHz atmospheric window, with an intermediate frequency signal in the range around 2GHz by mixing with the fourth harmonic of a 159.5GHz LO signal. Related design studies were undertaken at 320GHz which gave a simulated single side band (SSB) conversion loss of 5.7dB, and with a LO power requirement of less than -9.5dBm which vindicated the principle, as far as the design stage is concerned, of using RTDs as the non-linear mixing element, where the layer design can be tailored to favour very low pump powers.udThe other, related, target of the current PhD work was to also explore the potential for high LO drive level mixers and their up-conversion efficiencies using the same novel devices, i.e. RTDs, but with a different layer design, better suited to support high pump powers in this instance. For achieving the latter goal, two different sub-harmonic up-conversion mixers employing a single RTD and using the second harmonic of an LO signal were designed and evaluated at two different frequencies. The first mixer design was aimed at 180 GHz providing -7.5dBm of output power while the second one should work at 110GHz showing output power in the range of -4dBm, and was used to initially evaluate the approach and which could, in principle, be later fabricated and measured.udAll these down and up-conversion mixers were carefully designed using ADS and HFSS and evaluated using two different technologies, microstrip and Grounded Coplanar Waveguide (GCPW), and both compared with a nearest Schottky diode based approaches, and also their physical mask was produced in anticipation of a later fabrication stage.ud
机译:这项研究工作的主要目的是评估利用LO信号的四次谐波的次谐波下变频混频器的拓扑。通过在640GHz和320GHz上的仿真对设计进行评估,目的是在580-750GHz大气窗口中探索640GHz上基于RTD的下变频器的潜力,并通过与第四谐波混合将中频信号范围在2GHz左右。 159.5GHz LO信号。在320GHz下进行了相关的设计研究,该仿真研究给出了5.7dB的模拟单边带(SSB)转换损耗,并且LO功率要求小于-9.5dBm,这在设计阶段就证明了这一原理。使用RTD作为非线性混合元件,可以定制层设计以适应非常低的泵浦功率。 ud当前博士研究的另一个相关目标是也探索高LO驱动级混合器及其潜力。使用相同的新型器件(即RTD)但具有不同的层设计,其上转换效率更高,在这种情况下更适合于支持高泵浦功率。为了实现后一个目标,设计了两个不同的使用单个RTD并使用LO信号二次谐波的次谐波上变频混频器,并在两个不同的频率上对其进行了评估。第一个混频器设计针对180 GHz,提供-7.5dBm的输出功率,而第二个混频器设计应在110GHz上工作,显示-4dBm的输出功率,并且最初用于评估该方法,并且原则上可以 ud所有这些下变频和上变频混频器都是使用ADS和HFSS精心设计的,并使用两种不同的技术(微带和接地共面波导(GCPW))进行了评估,并且与基于肖特基二极管的最接近方法进行了比较,并且他们的物理掩膜是在预计以后的制造阶段生产的。 ud

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    Elsaadi Mussa Farag Mussa;

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