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Performance Limits of simulation models for noise characterization of mm-wave devices

机译:毫米波设备噪声表征仿真模型的性能极限

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摘要

Based on Boltzmann transport equation, the drift-diffusion, hydrodynamic, and Monte-Carlo physical models are accurately developed. The model equations are self-consistently solved with Poisson equation, and with Schrodinger equation when quantization effects take place, in one and two-dimensions to characterize the operation and optimize the structure of mm-wave devices. The effects of the devices dimensions, biasing conditions and operating frequencies on the accuracy of the obtained model (simulator) results are thoroughly investigated. Based on physical understanding of the models, the simulation results are analyzed and conclusions are drawn to fully determine the limits at which a certain device simulator can be accurately and efficiently used to characterize the noise behaviour of mm-wave devices.
机译:基于玻尔兹曼输运方程,可以精确地建立漂移-扩散,流体动力学和蒙特卡洛物理模型。当发生量化效应时,模型方程可以用Poisson方程和Schrodinger方程自洽求解,以一维和二维的形式来表征操作并优化毫米波器件的结构。彻底研究了器件尺寸,偏置条件和工作频率对所获得模型(仿真器)结果的准确性的影响。基于对模型的物理理解,对仿真结果进行分析并得出结论,以完全确定可以准确有效地使用某些设备模拟器表征毫米波设备噪声行为的极限。

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