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Multi-Device Optimization for Scalable DC HEMT Model with Self-Heating Effect

机译:具有自加热效应的可扩展直流HEMT模型的多器件优化

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This paper presents a new approach for extracting a scalable DC HEMT model. Scaling rules with unknown coefficients are assumed for each size dependent parameter, and the model parameter of different devices is thus correlated. A scalable model can then be extracted by multi-device optimization. The optimization is carried out on five devices with different gate width. In this way, accurate scaling rules for each parameter and very good I-V fittings for each device have been achieved simultaneously.
机译:本文提出了一种提取可扩展DC HEMT模型的新方法。对于每个尺寸相关参数假设具有未知系数的缩放规则,因此相关设备的模型参数是相关的。然后可以通过多设备优化提取可伸缩模型。优化在具有不同栅极宽度的五个设备上进行。以这种方式,同时实现了每个设备的每个参数和非常好的I-V配件的准确缩放规则。

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